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ES4612-MIB

AI MIB Summary

The ES4612-MIB provides SNMP management capabilities for the Extreme Networks ES4612 Ethernet Switch, enabling monitoring of interface statistics, port states, system resources, and environmental sensors. This module facilitates real-time visibility into switch performance and health through standard MIB objects for traffic counters, error rates, and hardware status.

The MIB module for ES4612.
Main OID:
es4612MIB.1.3.6.1.4.1.259.6.10.57
832
Objects
Active
Status
8
Dependencies

Imported Objects

Objects

832 total
Object Name
accton
OBJECT IDENTIFIER
.1.3.6.1.4.1.259
snmpMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6
cheetahSwitchMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10
es4612MIBThe MIB module for ES4612.
MODULE-IDENTITY
.1.3.6.1.4.1.259.6.10.57
es4612MIBObjects
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1
switchMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.1
switchManagementVlanThe VLAN on which management is done.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.1.1
switchNumberThe total number of switches present on this system.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.1.2
switchInfoTableTable of descriptive and status information about switches in this system.
SEQUENCE OF SwitchInfoEntry
.1.3.6.1.4.1.259.6.10.57.1.1.3
switchInfoEntryAn entry in the table, containing information about a single switch in this system.
SwitchInfoEntry
.1.3.6.1.4.1.259.6.10.57.1.1.3.1
swUnitIndexThis object identifies the switch within the system for which this entry contains information. This value can never be greater than switchNumber.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.1.3.1.1
swHardwareVerHardware version of the main board.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.1.3.1.2
swMicrocodeVerMicrocode version of the main board.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.1.3.1.3
swLoaderVerLoader version of the main board.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.1.3.1.4
swBootRomVerBoot ROM code version of the main board.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.1.3.1.5
swOpCodeVerOperation code version of the main board.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.1.3.1.6
swPortNumberThe total port number of this switch (including expansion slot).ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.1.3.1.7
swPowerStatusIndicates the switch using internalPower(1), redundantPower(2) or both(3)ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.1.3.1.8
swRoleInSystemIndicates the switch is master(1), backupMaster(2) or slave(3) in this system.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.1.3.1.9
swSerialNumberSerial number of the switch.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.1.3.1.10
swExpansionSlot1Type of expansion module in this switch slot 1.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.1.3.1.11
swExpansionSlot2Type of expansion module in this switch slot 2.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.1.3.1.12
swServiceTagService tag serial-number of the switch.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.1.3.1.13
swModelNumberModel number of the switch.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.1.3.1.14
switchOperStateGlobal operation state of the switch.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.1.4
switchProductId
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.1.5
swProdNamero
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.1.5.1
swProdManufacturerro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.1.5.2
swProdDescriptionro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.1.5.3
swProdVersionro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.1.5.4
swProdUrlro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.1.5.5
swIdentifierA unique identifier of which switch in the chassis is currently being looked at.ro
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.1.5.6
swChassisServiceTagThe service tag of the chassis this switch resides in.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.1.5.7
switchIndivPowerTableTable about statuses of individual powers.
SEQUENCE OF SwitchIndivPowerEntry
.1.3.6.1.4.1.259.6.10.57.1.1.6
switchIndivPowerEntryTable about statuses of individual powers.
SwitchIndivPowerEntry
.1.3.6.1.4.1.259.6.10.57.1.1.6.1
swIndivPowerUnitIndexThis is defined as swUnitIndex.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.1.6.1.1
swIndivPowerIndex1 means internal power. 2 means external power.ro
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.1.6.1.2
swIndivPowerStatusnotPresent(1) means not present. green(2) means up. red(3) means down.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.1.6.1.3
switchJumboFrameStatusenable(1) means the Jumbo Frame has enabled, disabled(2) means the Jumbo Frame has disabled.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.1.7
amtrMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.1.8
amtrMacAddrAgingStatusIf this is enabled(1), the MAC address table will age out according to its timer. If this is disabled(2), the MAC address table will not age out.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.1.8.3
switchFanTableThe table of Fan Status.
SEQUENCE OF SwitchFanEntry
.1.3.6.1.4.1.259.6.10.57.1.1.9
switchFanEntryA conceptual row of the switchFanTable.
SwitchFanEntry
.1.3.6.1.4.1.259.6.10.57.1.1.9.1
switchUnitIndexthe unit of the switch for stackable device.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.1.9.1.1
switchFanIndexThe unit number of the fan.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.1.9.1.2
switchFanStatusIndicating the status of the fan, 1:ok; 2:failure.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.1.9.1.3
portMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.2
portTableTable of descriptive and status information about configuration of each switch port (including expansion slot) in this system. This table also contains information about each trunk (similar to Cisco's EtherChannel).
SEQUENCE OF PortEntry
.1.3.6.1.4.1.259.6.10.57.1.2.1
portEntryAn entry in the table, containing information about configuration in one switch port of the switch.
PortEntry
.1.3.6.1.4.1.259.6.10.57.1.2.1.1
portIndexThis is defined as ifIndex in the IF-MIB.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.2.1.1.1
portNameIndicates the port name. This is same as ifAlias in the IF-MIB (RFC2863 or later).rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.2.1.1.2
portTypeIndicates the port type.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.2.1.1.3
portSpeedDpxCfgSet the port speed and duplex mode as follows: halfDuplex10(2) - 10Mbps and half duplex mode fullDuplex10(3) - 10Mbps and full duplex mode halfDuplex100(4) - 100Mbps and half duplex mode fullDuplex100(5) - 100Mbps and full duplex mode halfDuplex1000(6) - 1000Mbps and half duplex mode fullDuplex1000(7) - 1000Mbps and full duplex mode hundredBaseTX port can be set as halfDuplex10(2) fullDuplex10(3) halfDuplex100(4) fullDuplex100(5) hundredBaseFX port can be set as halfDuplex100(4) fullDuplex100(5) thousandBaseSX port can be set as halfDuplex1000(6) fullDuplex1000(7) The actual operating speed and duplex of the port is given by portSpeedDpxStatus.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.2.1.1.4
portFlowCtrlCfg(1) Flow control mechanism is enabled. If the port type is hundredBaseTX or thousandBaseSX: When the port is operating in halfDuplex mode, the port uses backPressure flow control mechanism. When the port is operating in fullDuplex mode, the port uses IEEE 802.3x flow control mechanism. If the port type is hundredBaseFX: When the port is operating in halfDuplex mode, the port uses backPressure flow control mechanism. When the port is operating in fullDuplex mode, Flow control mechanism will not function. (2) Flow control mechanism is disabled. (3) Flow control mechanism is backPressure. when the port is in fullDuplex mode.This flow control mechanism will not function. (4) Flow control mechanism is IEEE 802.3x flow control. when the port is in halfDuplex mode.This flow control mechanism will not function. hundredBaseTX and thousandBaseSX port can be set as: enabled(1), disabled(2), backPressure(3), dot3xFlowControl(4). hundredBaseFX port can be set as: enabled(1), disabled(2), backPressure(3). The actual flow control mechanism is used given by portFlowCtrlStatus.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.2.1.1.5
portCapabilitiesPort capabilities.rw
Bits
.1.3.6.1.4.1.259.6.10.57.1.2.1.1.6
portAutonegotiationWhether autonegotiation is enabled.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.2.1.1.7
portSpeedDpxStatusThe operating speed and duplex mode of the switched port. If this index is a trunk, the speed is the speed of its individual members. If this index is a trunk and the result is inconsistent among its member ports, this value is error(1).ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.2.1.1.8
portFlowCtrlStatus(2) BackPressure flow control machanism is used. (3) IEEE 802.3 flow control machanism is used. (4) Flow control mechanism is disabled. If this index is a trunk and the result is inconsistent among its member ports, this value is error(1).ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.2.1.1.9
portTrunkIndexThe trunk to which this port belongs. A value of 0 means that this port does not belong to any trunk. A value greater than zero means that this port belongs to trunk at trunkIndex, defined by the corresponding trunkPorts.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.2.1.1.10
portComboForcedModeThis determines the forced mode of a combo port. For a non-combo port, this variable has a value of none(1), and setting this variable to none(1) has no effect. For a combo port, this has its own valid values not equal to none(1), and setting this variable to none(1) is not allowed.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.2.1.1.12
trunkMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.3
trunkMaxIdThe maximum number for a trunk identifier.ro
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.3.1
trunkValidNumberThe number of valid trunks.ro
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.3.2
trunkTableTable of descriptive and status information about configuration of each trunk, similar to Cisco EtherChannel.
SEQUENCE OF TrunkEntry
.1.3.6.1.4.1.259.6.10.57.1.3.3
trunkEntryAn entry in the table, containing information about configuration in one trunk of the switch.
TrunkEntry
.1.3.6.1.4.1.259.6.10.57.1.3.3.1
trunkIndexThis object identifies the trunk within the switch for which this entry contains information.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.3.3.1.1
trunkPortsThe complete set of ports currently associated with this trunk.rw
PortList (Q-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.3.3.1.2
trunkCreationA value of static(1) means a statically configured trunk. A value of lacp(2) means an LACP-configured trunk.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.3.3.1.3
trunkStatusWriting this to valid(1) creates an entry. Writing this to invalid(2) destroys an entry.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.3.3.1.4
lacpMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.4
lacpPortTableTable for LACP port configuration.
SEQUENCE OF LacpPortEntry
.1.3.6.1.4.1.259.6.10.57.1.4.1
lacpPortEntryEntry for LACP port configuration.
LacpPortEntry
.1.3.6.1.4.1.259.6.10.57.1.4.1.1
lacpPortIndexThis is defined as ifIndex in the IF-MIB.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.4.1.1.1
lacpPortStatusWhether 802.3ad LACP is enabled.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.4.1.1.2
staMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.5
staSystemStatusGlobal spanning tree status. (1) Spanning tree protocol is enabled. (2) Spanning tree protocol is disabled.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.5.1
staPortTableThe table manages port settings for Spanning Tree Protocol 802.1d, 802.1w or 802.1s depending on the value specified by staProtocolType.
SEQUENCE OF StaPortEntry
.1.3.6.1.4.1.259.6.10.57.1.5.2
staPortEntryThe conceptual entry of staPortTable.
StaPortEntry
.1.3.6.1.4.1.259.6.10.57.1.5.2.1
staPortIndexThe port and the trunk (excluding trunk member ports) interface of the staPortTable. The interface identified by a particular value of this index is the same interface as identified by the same value of dot1dStpPort in the BRIDGE-MIB.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.2.1.1
staPortFastForwardWhether fast forwarding is enabled.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.5.2.1.2
staPortProtocolMigrationWhen operating in RSTP (version 2) mode, writing true(1) to this object forces this port to transmit RSTP BPDUs. Any other operation on this object has no effect and it always returns false(2) when read.rw
TruthValue (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.5.2.1.3
staPortAdminEdgePortThe administrative value of the edge port parameter. A value of true(1) indicates that this port should be assumed as an edge-port and a value of false(2) indicates that this port should be assumed as a non-edge-port.rw
TruthValue (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.5.2.1.4
staPortOperEdgePortThe operational value of the edge port parameter. The object is initialized to the value of staPortAdminEdgePort and is set false when a BPDU is received.ro
TruthValue (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.5.2.1.5
staPortAdminPointToPointThe administrative point-to-point status of the LAN segment attached to this port. A value of forceTrue(0) indicates that this port should always be treated as if it is connected to a point-to-point link. A value of forceFalse(1) indicates that this port should be treated as having a shared media connection. A value of auto(2) indicates that this port is considered to have a point-to-point link if it is an Aggregator and all of its members are aggregatable, or if the MAC entity is configured for full duplex operation, either through auto-negotiation or by management means.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.5.2.1.6
staPortOperPointToPointThe operational point-to-point status of the LAN segment attached to this port. This indicates whether a port is considered to have a point-to-point connection or not. The value is determined by management or by auto-detection, as described in the staPortAdminPointToPoint object.ro
TruthValue (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.5.2.1.7
staPortLongPathCostThe contribution of this port to the path cost (in 32 bits value) of paths towards the spanning tree root which include this port. This object is used to configure the spanning tree port path cost in the 32-bit value range when the staPathCostMethod is long(2). If the staPathCostMethod is short(1), this mib object is not instantiated.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.2.1.8
staPortSystemStatusPer-port spanning tree status. (1) Spanning tree protocol is enabled. (2) Spanning tree protocol is disabled.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.5.2.1.9
staProtocolTypeThe version of Spanning Tree Protocol the bridge is currently running. The value 'stp(1)' indicates the Spanning Tree Protocol is as specified in IEEE 802.1D,'rstp(2)' indicates that the Rapid Spanning Tree Protocol is as specified in IEEE 802.1w, and the value 'mstp(3)' indicates that the Multiple Spanning Tree Protocol is as specified in IEEE 802.1s. New values may be defined in the future as new or updated versions of the protocol become available.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.5.3
staTxHoldCountThe value used by the Port Transmit state machine to limit the maximum transmission rate.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.4
staPathCostMethodIndicates the type of spanning tree path cost mode configured on the switch. This mode applies to all instances of the spanning tree protocol running on the switch. When the value of this MIB object is changed, the path cost of all ports will be reassigned to the default path cost values based on the new spanning tree path cost mode and the ports' speed. When the value of this MIB object is set to long(2), the staPortLongPathCost MIB object must be used to retrieve/configure the spanning tree port path cost as a 32-bit value. The set operation on dot1dStpPortPathCost in BRIDGE-MIB will be rejected. While retrieving the value of dot1dStpPortPathCost, the maximum value of 65535 will be returned if the value of staPortLongPathCost for the same instance exceeds 65535. When the value of this MIB object is set to short(1), the dot1dStpPortPathCost in BRIDGE-MIB must be used.rw
StaPathCostMode
.1.3.6.1.4.1.259.6.10.57.1.5.5
xstMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.5.6
mstNameThe name of the Multiple Spanning Tree region.rw
DisplayString (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.5.6.1
mstRevisionThe Revision number of the Multiple Spanning Tree region.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.6.2
mstMaxHopsThe max hop number counts of the Multiple Spanning Tree region.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.6.3
xstInstanceCfgTableThis table is used to configure the property of a specific instance in Multiple Spanning Tree or Rapid Spanning Tree. If Rapid Spanning Tree protocol is in use, the mstInstanceEditIndex is always 0.
SEQUENCE OF XstInstanceCfgEntry
.1.3.6.1.4.1.259.6.10.57.1.5.6.4
xstInstanceCfgEntryA conceptual row containing the property of the RST or MST instance.
XstInstanceCfgEntry
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1
xstInstanceCfgIndexAn arbitrary integer within the range from 1 to the value of the maximum instance that uniquely identifies a spanning tree instance.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1.1
xstInstanceCfgPriorityThe priority of a specific spanning tree instance. The value assigned should be in the range 0-61440 in steps of 4096.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1.2
xstInstanceCfgTimeSinceTopologyChangeThe time (in hundredths of a second) since the last topology change detected by the bridge entity in RST or MST.ro
TimeTicks (SNMPv2-SMI)
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1.3
xstInstanceCfgTopChangesThe total number of topology changes detected by this bridge in RST or MST since the management entity was last reset or initialized.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1.4
xstInstanceCfgDesignatedRootThe bridge identifier of the root of the spanning tree as determined by the Multiple Spanning Tree Protocol. (802.1s) or Rapid Spanning Tree Protocol ( 802.1w ) executed by this node. This value is used as the root identifier parameter in all configuration bridge PDUs originated by this node.ro
BridgeId (BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1.5
xstInstanceCfgRootCostThe cost of the path to the root as seen from this bridge of the RST or MST.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1.6
xstInstanceCfgRootPortThe number of the port which offers the lowest cost path from this bridge to the root bridge of the RST or MST.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1.7
xstInstanceCfgMaxAgeThe maximum age of Multiple Spanning Tree Protocol ( 802.1s ) or Rapid Spanning Tree Protocol ( 802.1w ) information learned from the network on any port before it is discarded, in units of hundredths of a second. This is the actual value that this bridge is currently using.ro
Timeout (BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1.8
xstInstanceCfgHelloTimeThe amount of time between the transmission of configuration bridge PDUs by this node on any port when it is the root of the specific spanning tree or trying to become so, in units of hundredths of a second. This is the actual value that this bridge is currently using in RST or MST.ro
Timeout (BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1.9
xstInstanceCfgHoldTimeThis time value determines the interval length during which no more than two configuration bridge PDUs shall be transmitted by this node, in units of hundredths of a second.ro
Timeout (BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1.10
xstInstanceCfgForwardDelayFor RST or MST protocol, this time value, measured in units of hundredths of a second, controls how fast a port changes its spanning state when moving towards the forwarding state. The value determines how long the port stays in each of the listening and learning states, which precede the forwarding state. This value is also used, when a topology change has been detected and is underway, to age all dynamic entries in the forwarding database. This value is the current value being used by the bridge. xstInstanceCfgBridgeForwardDelay defines the value that this bridge and all others would start using if/when this bridge were to become the root.ro
Timeout (BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1.11
xstInstanceCfgBridgeMaxAgeFor RST or MST protocol, the time (in hundredths of second) that all bridges use for MaxAge when this bridge is acting as the root. Note that 802.1D-1990 specifies that the range for this parameter is related to the value of xstInstanceCfgBridgeHelloTime. The granularity of this timer is specified by 802.1D-1990 to be 1 second.ro
Timeout (BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1.12
xstInstanceCfgBridgeHelloTimeFor RST or MST protocol,the time (in hundredths of a second) that all bridges use for HelloTime when this bridge is acting as the root. The granularity of this timer is specified by 802.1D-1990 to be 1 second.ro
Timeout (BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1.13
xstInstanceCfgBridgeForwardDelayFor RST or MST protocol, the time (in hundredths of a second) that all bridges use for ForwardDelay when this bridge is acting as the root. Note that 802.1D-1990 specifies that the range for this parameter is related to the value of xstInstanceCfgBridgeMaxAge. The granularity of this timer is specified by 802.1D-1990 to be 1 second.ro
Timeout (BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1.14
xstInstanceCfgTxHoldCountFor RST or MST protocol, the value used by the port transmit state machine to limit the maximum transmission rate.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1.15
xstInstanceCfgPathCostMethodFor RST or MST protocol, this indicates the type of spanning tree path cost mode used by the switch. The mode applies to all instances of the Spanning Tree protocol running on the switch. When the value of this MIB object is changed, the path cost of all ports will be reassigned to the default path cost values based on the new spanning tree path cost mode and the ports' speed. When the value of this MIB object is set to long(2), the xstInstancePortPathCost MIB object must be used in order to retrieve/configure the spanning tree port path cost as a 32-bit value. The set operation on dot1dStpPortPathCost in BRIDGE-MIB will be rejected. While retrieving the value of dot1dStpPortPathCost, the maximum value of 65535 will be returned if the value of xstInstancePortPathCost for the same instance exceeds 65535. When the value of this MIB object is set to short(1), the dot1dStpPortPathCost in BRIDGE-MIB must be used.ro
StaPathCostMode
.1.3.6.1.4.1.259.6.10.57.1.5.6.4.1.16
xstInstancePortTableThe extension table for dot1dStpPortEntry to provide additional Spanning Tree information and configuration.
SEQUENCE OF XstInstancePortEntry
.1.3.6.1.4.1.259.6.10.57.1.5.6.5
xstInstancePortEntryThe conceptual row for xstInstancePortTable.
XstInstancePortEntry
.1.3.6.1.4.1.259.6.10.57.1.5.6.5.1
xstInstancePortInstanceThe instance of the MSTP.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.6.5.1.1
xstInstancePortPortThe port and the trunk (excluding trunk member ports) interface of the mstInstancePortTable. The interface identified by a particular value of this index is the same interface as identified by the same value of dot1dStpPort in the BRIDGE-MIB.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.6.5.1.2
xstInstancePortPriorityDefines the priority used for this port in the Spanning Tree Algorithm. If the path cost for all ports on a switch is the same, the port with the highest priority (i.e., lowest value) will be configured as an active link in the Spanning Tree. This makes a port with higher priority less likely to be blocked if the Spanning Tree Algorithm is detecting network loops. Where more than one port is assigned the highest priority, the port with lowest numeric identifier will be enabled.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.6.5.1.3
xstInstancePortStateThe port's current state as defined by application of the Spanning Tree Protocol. This state controls what action a port takes on reception of a frame: discarding(1): Port receives configuration messages, but does not forward packets. learning(2): Port has transmitted configuration messages for an interval set by the Forward Delay parameter without receiving contradictory information. Port address table is cleared, and the port begins learning addresses. forwarding(3): Port forwards packets, and continues learning addresses. For ports which are disabled (see xstInstancePortEnable), this object will have a value of discarding(1).ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.5.6.5.1.4
xstInstancePortEnableThe enabled/disabled status of the port.ro
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.5.6.5.1.5
xstInstancePortPathCostThe pathcost of the RST or MST in the range 1 to 200000000. This parameter is used to determine the best path between devices. Therefore, lower values should be assigned to ports attached to faster media, and higher values assigned to ports with slower media. (Path cost takes precedence over port priority).rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.6.5.1.6
xstInstancePortDesignatedRootThe unique bridge identifier of the bridge recorded as the root in the configuration BPDUs transmitted by the designated bridge for the segment to which the port is attached.ro
BridgeId (BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.5.6.5.1.7
xstInstancePortDesignatedCostThe path cost of the designated port of the segment connected to this port. This value is compared to the root path cost field in received bridge PDUs.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.6.5.1.8
xstInstancePortDesignatedBridgeThe bridge identifier of the bridge which this port considers to be the designated bridge for this port's segment.ro
BridgeId (BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.5.6.5.1.9
xstInstancePortDesignatedPortThe port identifier of the port on the designated bridge for this port's segment.ro
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.5.6.5.1.10
xstInstancePortForwardTransitionsThe number of times this port has transitioned from the learning state to the forwarding state.ro
Counter32
.1.3.6.1.4.1.259.6.10.57.1.5.6.5.1.11
xstInstancePortPortRoleThe role of the port in the RST or MST protocol: (1) The port has no role within the spanning tree (2) The port is part of the active topology connecting the bridge to the root bridge (i.e., root port) (3) The port is connecting a LAN through the bridge to the root bridge (i.e., designated port) (4) The port may provide connectivity if other bridges, bridge ports, or LANs fail or are removed. (5) The port provides backup if other bridges, bridge ports, or LANs fail or are removed. (6) For MST protocol only, indicates whether this instance is in a master role.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.5.6.5.1.12
mstInstanceEditTableThe Multiple Spanning Tree region instance vlan configuration table. Please read the actual instance vlan mapped in the mstInstanceOperTable.
SEQUENCE OF MstInstanceEditEntry
.1.3.6.1.4.1.259.6.10.57.1.5.6.6
mstInstanceEditEntryA conceptual row containing the status of the MSTP instance.
MstInstanceEditEntry
.1.3.6.1.4.1.259.6.10.57.1.5.6.6.1
mstInstanceEditIndexAn arbitrary integer within the range from 1 to the value of the maximum instance that uniquely identifies a spanning tree instance.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.6.6.1.1
mstInstanceEditVlansMapA string of octets containing one bit per VLAN. The first octet corresponds to VLANs with vlanIndex values of 0 through 7; the second octet to VLANs 8 through 15; etc., The most significant bit of each octet corresponds to the lowest value vlanIndex in that octet. For each VLAN, if it is mapped to this MSTP instance, then the bit corresponding to that VLAN is set to '1'. To create a row, write any of mstInstanceEditVlansMap, mstInstanceEditVlansMap2k, mstInstanceEditVlansMap3k or mstInstanceEditVlansMap4k, to a non-empty list. To destroy a row, write all of these four variables to an empty list.rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.5.6.6.1.2
mstInstanceEditVlansMap2kA string of octets containing one bit per VLAN for VLANS with vlanIndex values of 1024 through 2047. The first octet corresponds to VLANs with vlanIndex values of 1024 through 1031; the second octet to VLANs 1032 through 1039; etc. The most significant bit of each octet corresponds to the lowest value vlanIndex in that octet. For each VLAN, if it is mapped to this MSTP instance, then the bit corresponding to that VLAN is set to '1'. To create a row, write any of mstInstanceEditVlansMap, mstInstanceEditVlansMap2k, mstInstanceEditVlansMap3k or mstInstanceEditVlansMap4k, to a non-empty list. To destroy a row, write all of these four variables to an empty list.rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.5.6.6.1.3
mstInstanceEditVlansMap3kA string of octets containing one bit per VLAN for VLANS with vlanIndex values of 2048 through 3071. The first octet corresponds to VLANs with vlanIndex values of 2048 through 2055; the second octet to VLANs 2056 through 2063; etc. The most significant bit of each octet corresponds to the lowest value vlanIndex in that octet. For each VLAN, if it is mapped to this MSTP instance, then the bit corresponding to that VLAN is set to '1'. To create a row, write any of mstInstanceEditVlansMap, mstInstanceEditVlansMap2k, mstInstanceEditVlansMap3k or mstInstanceEditVlansMap4k, to a non-empty list. To destroy a row, write all of these four variables to an empty list.rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.5.6.6.1.4
mstInstanceEditVlansMap4kA string of octets containing one bit per VLAN for VLANS with vlanIndex values of 3072 through 4095. The first octet corresponds to VLANs with vlanIndex values of 3072 through 3079; the second octet to VLANs 3080 through 3087; etc. The most significant bit of each octet corresponds to the lowest value vlanIndex in that octet. For each VLAN, if it is mapped to this MSTP instance, then the bit corresponding to that VLAN is set to '1'. To create a row, write any of mstInstanceEditVlansMap, mstInstanceEditVlansMap2k, mstInstanceEditVlansMap3k or mstInstanceEditVlansMap4k, to a non-empty list. To destroy a row, write all of these four variables to an empty list.rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.5.6.6.1.5
mstInstanceEditRemainingHopsThe remaining hop count for this MST instance.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.6.6.1.6
mstInstanceOperTableThe Multiple Spanning Tree region instance vlan mapped table.
SEQUENCE OF MstInstanceOperEntry
.1.3.6.1.4.1.259.6.10.57.1.5.6.7
mstInstanceOperEntryA conceptual row containing the status of the MSTP instance.
MstInstanceOperEntry
.1.3.6.1.4.1.259.6.10.57.1.5.6.7.1
mstInstanceOperIndexAn arbitrary integer within the range from 1 to the value of the maximum instance that uniquely identifies a spanning tree instance.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.5.6.7.1.1
mstInstanceOperVlansMapA string of octets containing one bit per VLAN. The first octet corresponds to VLANs with vlanIndex values of 0 through 7; the second octet to VLANs 8 through 15; etc., The most significant bit of each octet corresponds to the lowest value vlanIndex in that octet. For each VLAN, if it is mapped to this MSTP instance, then the bit corresponding to that VLAN is set to '1'.ro
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.5.6.7.1.2
mstInstanceOperVlansMap2kA string of octets containing one bit per VLAN for VLANS with vlanIndex values of 1024 through 2047. The first octet corresponds to VLANs with vlanIndex values of 1024 through 1031; the second octet to VLANs 1032 through 1039; etc. The most significant bit of each octet corresponds to the lowest value vlanIndex in that octet. For each VLAN, if it is mapped to this MSTP instance, then the bit corresponding to that VLAN is set to '1'.ro
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.5.6.7.1.3
mstInstanceOperVlansMap3kA string of octets containing one bit per VLAN for VLANS with vlanIndex values of 2048 through 3071. The first octet corresponds to VLANs with vlanIndex values of 2048 through 2055; the second octet to VLANs 2056 through 2063; etc. The most significant bit of each octet corresponds to the lowest value vlanIndex in that octet. For each VLAN, if it is mapped to this MSTP instance, then the bit corresponding to that VLAN is set to '1'.ro
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.5.6.7.1.4
mstInstanceOperVlansMap4kA string of octets containing one bit per VLAN for VLANS with vlanIndex values of 3072 through 4095. The first octet corresponds to VLANs with vlanIndex values of 3072 through 3079; the second octet to VLANs 3080 through 3087; etc. The most significant bit of each octet corresponds to the lowest value vlanIndex in that octet. For each VLAN, if it is mapped to this MSTP instance, then the bit corresponding to that VLAN is set to '1'.ro
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.5.6.7.1.5
restartMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.7
restartOpCodeFileName of op-code file for start-up.rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.7.1
restartConfigFileName of configuration file for start-up.rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.7.2
restartControlSetting this object to warmBoot(2) causes the device to restart the application software with current configuration parameters saved in non-volatile memory. Setting this object to coldBoot(3) causes the device to reinitialize configuration parameters in non-volatile memory to default values and restart the application software. When the device is running normally, this variable has a value of running(1).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.7.3
mirrorMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.8
mirrorTableTable of descriptive and status information about switches in this system.
SEQUENCE OF MirrorEntry
.1.3.6.1.4.1.259.6.10.57.1.8.1
mirrorEntryAn entry in the table, containing information about a single switch in this system.
MirrorEntry
.1.3.6.1.4.1.259.6.10.57.1.8.1.1
mirrorDestinationPortDestination port for mirrored packets. This is defined as ifIndex in the IF-MIB.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.8.1.1.1
mirrorSourcePortSource port for mirrored packets. This is defined as ifIndex in the IF-MIB.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.8.1.1.2
mirrorTypeIf this value is rx(1), receive packets will be mirrored. If this value is tx(2), transmit packets will be mirrored. If this value is both(3), both receive and transmit packets.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.8.1.1.3
mirrorStatusWriting this to valid(1) creates an entry. Writing this to invalid(2) destroys an entry.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.8.1.1.4
igmpSnoopMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.9
igmpSnoopStatusParameter to enable or disable IGMP snooping on the device. When enabled, the device will examine IGMP packets and set up filters for IGMP ports.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.9.1
igmpSnoopQuerierWhether to act as querier.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.9.2
igmpSnoopQueryCountMaximum number of queries that have not been heard on the system before the system starts taking action to solicit reports.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.9.3
igmpSnoopQueryIntervalQuery interval.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.9.4
igmpSnoopQueryMaxResponseTimeTimeout value (seconds) between IGMP reports received on a port for an IP Multicast Address that can pass before the system sends an IGMP Query out the port and removes it from the list.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.9.5
igmpSnoopQueryTimeoutQuery time-out.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.9.6
igmpSnoopVersionVersion.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.9.7
igmpSnoopRouterCurrentTableTable for current router ports.
SEQUENCE OF IgmpSnoopRouterCurrentEntry
.1.3.6.1.4.1.259.6.10.57.1.9.8
igmpSnoopRouterCurrentEntryEntry for current router ports.
IgmpSnoopRouterCurrentEntry
.1.3.6.1.4.1.259.6.10.57.1.9.8.1
igmpSnoopRouterCurrentVlanIndexThis is defined as dot1qVlanIndex in the Q-BRIDGE-MIB.
Unsigned32
.1.3.6.1.4.1.259.6.10.57.1.9.8.1.1
igmpSnoopRouterCurrentPortsThe set of ports which are current router ports. Within this list, some router ports are static router ports. Please refer to igmpSnoopRouterStaticTable.ro
PortList (Q-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.9.8.1.2
igmpSnoopRouterCurrentStatusThe set of ports which are static router ports.ro
PortList (Q-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.9.8.1.3
igmpSnoopRouterStaticTableTable for static router ports.
SEQUENCE OF IgmpSnoopRouterStaticEntry
.1.3.6.1.4.1.259.6.10.57.1.9.9
igmpSnoopRouterStaticEntryEntry for static router ports.
IgmpSnoopRouterStaticEntry
.1.3.6.1.4.1.259.6.10.57.1.9.9.1
igmpSnoopRouterStaticVlanIndexThis is defined as dot1qVlanIndex in the Q-BRIDGE-MIB.
Unsigned32
.1.3.6.1.4.1.259.6.10.57.1.9.9.1.1
igmpSnoopRouterStaticPortsThe set of ports which are static router ports.rw
PortList (Q-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.9.9.1.2
igmpSnoopRouterStaticStatusWriting this to valid(1) creates an entry. Writing this to invalid(2) destroys an entry.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.9.9.1.3
igmpSnoopMulticastCurrentTableTable for current multicast addresses.
SEQUENCE OF IgmpSnoopMulticastCurrentEntry
.1.3.6.1.4.1.259.6.10.57.1.9.10
igmpSnoopMulticastCurrentEntryEntry for current multicast addresses.
IgmpSnoopMulticastCurrentEntry
.1.3.6.1.4.1.259.6.10.57.1.9.10.1
igmpSnoopMulticastCurrentVlanIndexThis is defined as dot1qVlanIndex in the Q-BRIDGE-MIB.
Unsigned32
.1.3.6.1.4.1.259.6.10.57.1.9.10.1.1
igmpSnoopMulticastCurrentIpAddressIP address of multicast group.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.9.10.1.2
igmpSnoopMulticastCurrentPortsThe set of ports which are members.ro
PortList (Q-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.9.10.1.3
igmpSnoopMulticastCurrentStatusThe set of ports which are static members.ro
PortList (Q-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.9.10.1.4
igmpSnoopMulticastStaticTableTable for static multicast addresses.
SEQUENCE OF IgmpSnoopMulticastStaticEntry
.1.3.6.1.4.1.259.6.10.57.1.9.11
igmpSnoopMulticastStaticEntryEntry for static multicast addresses.
IgmpSnoopMulticastStaticEntry
.1.3.6.1.4.1.259.6.10.57.1.9.11.1
igmpSnoopMulticastStaticVlanIndexThis is defined as dot1qVlanIndex in the Q-BRIDGE-MIB.
Unsigned32
.1.3.6.1.4.1.259.6.10.57.1.9.11.1.1
igmpSnoopMulticastStaticIpAddressIP address of multicast group.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.9.11.1.2
igmpSnoopMulticastStaticPortsThe set of ports which are members.rw
PortList (Q-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.9.11.1.3
igmpSnoopMulticastStaticStatusWriting this to valid(1) creates an entry. Writing this to invalid(2) destroys an entry.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.9.11.1.4
ipMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.10
netDefaultGatewayThe IP Address of the default gateway. If this value is undefined or unknown, it shall have the value 0.0.0.0.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.10.2
ipHttpStateWhether HTTP is enabled.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.10.3
ipHttpPortThe port number for HTTP.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.10.4
ipDhcpRestartWrite it to restart(1) to restart DHCP. When read, this value always returns noRestart(2).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.10.5
ipHttpsStateWhether HTTPS is enabled.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.10.6
ipHttpsPortThe port number for HTTPS.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.10.7
dhcpMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.10.11
dhcpClient
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.10.11.1
dhcpcOptions
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.10.11.1.1
dhcpcInterfaceTableTable for DHCP client information listed by interface. Depending on the nature of the product, this table may have only one entry(e.g. for the management VLAN), or may have many entries(e.g. for all ports, or for all static VLANs).
SEQUENCE OF DhcpcInterfaceTable
.1.3.6.1.4.1.259.6.10.57.1.10.11.1.1.1
dhcpcInterfaceEntryEntry for DHCP client information listed by interface.
DhcpcInterfaceTable
.1.3.6.1.4.1.259.6.10.57.1.10.11.1.1.1.1
dhcpcIfIndexThis is defined by ifIndex in the IF-MIB.(static vlan if index)
Integer32
.1.3.6.1.4.1.259.6.10.57.1.10.11.1.1.1.1.1
dhcpcIfClientIdModeWhether the Client ID is in text mode or in Hex mode.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.10.11.1.1.1.1.2
dhcpcIfClientIdThe value that the DHCP client sets in the client_id option of DHCPDISCOVER and DHCPREQUEST messages. This value may be used by DHCP servers to uniquely identify the client.rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.10.11.1.1.1.1.3
dhcpRelay
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.10.11.2
dhcpRelayServerAddrTableThe role of DHCP Relay Agent is to forward requests and replies between server and client when they are not in the same subnet. To enable DHCP Relay service user needs to specify Relay Server ip address and then restart DHCP Relay. This Table is to specify Relay Server ip address, the maximum numbers of server ip address user can specify is 5. To Restart DHCP Relay, please use the dhcpRelayRestart variable.
SEQUENCE OF DhcpRelayServerAddrEntry
.1.3.6.1.4.1.259.6.10.57.1.10.11.2.2
dhcpRelayServerAddrEntryA conceptual row of dhcpRelayServerAddrTable.
DhcpRelayServerAddrEntry
.1.3.6.1.4.1.259.6.10.57.1.10.11.2.2.1
dhcpRelayServerAddrIfIndexThe VLAN interface being used by this table entry.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.10.11.2.2.1.1
dhcpRelayServerAddrIndexThe Index of the Relay server IP address.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.10.11.2.2.1.2
dhcpRelayServerAddrServerIpThe IP address of the relay server.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.10.11.2.2.1.3
dhcpRelayRestartSet to restart(1) to restart DCHP Relay. Always get noRestart(2) when you read this variable.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.10.11.2.3
dhcpServerMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.10.11.3
dhcpPoolTableA dhcp pool is a collection of user configuration such as option config-lease time or dns-server IPs, a network address for network pool, or a host IP plus a hardware address pair for host pool. However, a dhcp pool only can either be a network pool or a host pool, or none of them (such as that pool only containing option config no network address config or a host ip config as well)
SEQUENCE OF DhcpPoolEntry
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.1
dhcpPoolEntryA conceptual row of dhcpPoolTable.
DhcpPoolEntry
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.1.1
dhcpPoolPoolNamePoolName, simply specify a string which string size NO MORE THAN 8
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.1.1.1
dhcpPoolPoolTypePool Type: notSpecify(1); netWork(2);host(3)rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.1.1.2
dhcpPoolPoolAddressPool Addressrw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.1.1.3
dhcpPoolSubnetMaskSubnet Maskrw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.1.1.4
dhcpPoolHardwareTypeHardware type: notSpecify(1); ethernet(2); ieee802(3); fddi(4)rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.1.1.5
dhcpPoolMacAddressMAC addressrw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.1.1.6
dhcpPoolstatusSetting this to valid(1) creates an entry. Setting this to invalid(2) destroys an entry.rw
ValidStatus
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.1.1.7
dhcpPoolOptionTableThis is the Option table of the dhcpPoolTable, user can specify Options configuration in this table
SEQUENCE OF DhcpPoolOptionEntry
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.2
dhcpPoolOptionEntryA conceptual row of dhcpPoolOptionTable.
DhcpPoolOptionEntry
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.2.1
dhcpPoolOptionPoolNamePoolName, simply specify a string which string size NO MORE THAN 8
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.2.1.1
dhcpPoolOptionNextServerSpecifies the IP address of the next server in the boot process, which is typically a Trivial File Transfer Protocol(TFTP) server. One IP address is required.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.2.1.2
dhcpPoolOptionNetbiosNodeTypeSpecifies the NetBIOS node type. Valid types are: none(1) b-node(2) - Broadcast p-node(3) - Peer-to-peer m-node(4) - Mixed h-node(5) - Hybrid.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.2.1.3
dhcpPoolOptionDomainNameSpecifies the domain name string.rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.2.1.4
dhcpPoolOptionBootFileTo specify the name of the default boot image.rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.2.1.5
dhcpPoolOptionLeaseTimeTo configure the duration of the lease of an IP address that is assigned from a DHCP Server to a DHCP client.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.2.1.6
dhcpPoolOptionCidModeSet this variable to text(2) of hex(3) to specify the mode of the Client Id, which is useful for CLI to determine the display way of the Client Id. You will get default value 'notSpecify(1)'when this variable had never been set. Setting this to notSpecify(1) is a invalid operation.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.2.1.7
dhcpPoolOptionCidBufferContent of Client Id. You MUST specify the dhcpPoolOptionCidMode before setting this variable.rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.2.1.8
dhcpPoolOptionDnsSerTableTo specify the DNS IP servers available to a DHCP client, you can specify up to two addresses for each DHCP pool.
SEQUENCE OF DhcpPoolOptionDnsSerEntry
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.3
dhcpPoolOptionDnsSerEntryA conceptual row of dhcpPoolOptionDnsSerTable.
DhcpPoolOptionDnsSerEntry
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.3.1
dhcpPoolOptionDnsSerPoolNamePoolName, simply specify a string which string size NO MORE THAN 8
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.3.1.1
dhcpPoolOptionDnsSerIndexIndex of the DNS server.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.3.1.2
dhcpPoolOptionDnsSerIpAddressIp address of the DNS server.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.3.1.3
dhcpPoolOptDefaultRouterTableSpecifices the default router list for a DHCP Client, you can specify up to two addresses for each DHCP pool.
SEQUENCE OF DhcpPoolOptDefaultRouterEntry
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.4
dhcpPoolOptDefaultRouterEntryA conceptual row of dhcpPoolOptDefaultRouterTable.
DhcpPoolOptDefaultRouterEntry
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.4.1
dhcpPoolOptDefaultRouterPoolNamePoolName, simply specify a string which string size NO MORE THAN 8
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.4.1.1
dhcpPoolOptDefaultRouterIndexIndex of the default router.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.4.1.2
dhcpPoolOptDefaultRouterIpAddressSpecifies the IP address of a router. One IP address is required.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.4.1.3
dhcpPoolOptNetbiosServerTableTo configure the NetBIOS WINS name servers that are available to DHCP clients. You can specify up to eight addressed for each DHCP pool.
SEQUENCE OF DhcpPoolOptNetbiosServerEntry
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.5
dhcpPoolOptNetbiosServerEntryA conceptual row of dhcpPoolOptNetbiosServerTable.
DhcpPoolOptNetbiosServerEntry
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.5.1
dhcpPoolOptNetbiosServerPoolNamePoolName, simply specify a string which string size NO MORE THAN 8
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.5.1.1
dhcpPoolOptNetbiosServerIndexIndex of the Netbios name Server.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.5.1.2
dhcpPoolOptNetbiosServerIpAddressSpecifies the IP address of the NetBIOS WINS name server. One IP address is required.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.5.1.3
dhcpServerExcludedIpAddrTableTo specify IP addresses that a DHCP Server shuld not assign to DHCP clients.
SEQUENCE OF DhcpServerExcludedIpAddrEntry
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.6
dhcpServerExcludedIpAddrEntryA conceptual row of dhcpServerExcludedIpAddrTable.
DhcpServerExcludedIpAddrEntry
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.6.1
dhcpServerExcludedIpAddrLowIpThe excluded IP address, or first IP address in an excluded address range.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.6.1.1
dhcpServerExcludedIpAddrHiIpThe last IP address in the excluded address range.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.6.1.2
dhcpServerExcludedIpAddrStatusSetting this to valid(1) creates an entry. Setting this to invalid(2) destroys an entry.rw
ValidStatus
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.6.1.3
dhcpServerLeaseBindingTableTo configure the address bindings on the DHCP server.
SEQUENCE OF DhcpServerLeaseBindingEntry
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.7
dhcpServerLeaseBindingEntryA conceptual row of dhcpServerLeaseBindingTable.
DhcpServerLeaseBindingEntry
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.7.1
dhcpServerLeaseBindingIpThe IP address of the host as recorded on the DHCP Server.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.7.1.1
dhcpServerLeaseBindingMacThe MAC address of the host as recorded on the DHCP Server.ro
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.7.1.2
dhcpServerLeaseBindingLeaseTimeThe lease expiration date of the IP address of the host.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.7.1.3
dhcpServerLeaseBindingStartTimeShow current system real time in sec.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.7.1.4
dhcpServerLeaseBindingStatusSetting this to valid(1) creates an entry. Setting this to invalid(2) destroys an entry.rw
ValidStatus
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.7.1.5
dhcpServerServiceStatusSetting this to 1 to enable the dhcp server service. Setting this to 2 to disable the dhcp server service.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.10.11.3.8
iPAddrTableA table of iPAddrEntry.
SEQUENCE OF IPAddrEntry
.1.3.6.1.4.1.259.6.10.57.1.10.16
iPAddrEntryA set of configuration parameters for a particular network interface on this device. If the device has no network interface, this table is empty. The index is composed of the ifIndex assigned to the corresponding interface.
IPAddrEntry
.1.3.6.1.4.1.259.6.10.57.1.10.16.1
iPAddrIPAddressThe IP address of this Net interface. The default value for this object is 0.0.0.0. If either the IPAddrIPAddress or IPAddrSubnetMask is 0.0.0.0, then when the device boots, it may use BOOTP to try to figure out what these values should be. If BOOTP fails, before the device can talk on the network, this value must be configured (e.g., through a terminal attached to the device).
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.10.16.1.1
iPAddrSubnetMaskThe subnet mask of this Net interface. The default value for this object is 0.0.0.0. If either the IPAddrIPAddress or IPAddrSubnetMask are 0.0.0.0, then when the device boots, it may use BOOTP to try to figure out what these values should be. If BOOTP fails, before the device can talk on the network, this value must be configured (e.g., through a terminal attached to the device).
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.10.16.1.2
iPAddrIfIndexThe VLAN interface being used by this table entry. Only the VLAN interfaces which have an IP configured will appear in the table.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.10.16.1.3
iPAddrPrimaryInterfaceWhether this is a primary interface.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.10.16.1.4
iPAddrUnnumberedWhether this is an unnumbered interface.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.10.16.1.5
iPAddrStatusThe status of this conceptual row entry. This object isused to manage the creation and deletion of conceptual rows. The status column has six defined values: - 'active', which indicates that the conceptual row is available for use by the managed device; - 'notInService', which indicates that the conceptual row exists in the agent, but is unavailable for use by the managed device (see NOTE below); - 'notReady', which indicates that the conceptual row exists in the agent, but is missing information necessary in order to be available for use by the managed device; - 'createAndGo', which is supplied by a management station wishing to create a new instance of a conceptual row and to have its status automatically set to active, making it available for use by the managed device; - 'createAndWait', which is supplied by a management station wishing to create a new instance of a conceptual row (but not make it available for use by the managed device); and, - 'destroy', which is supplied by a management station wishing to delete all of the instances associated with an existing conceptual row. Whereas five of the six values (all except 'notReady') may be specified in a management protocol set operation, only three values will be returned in response to a management protocol retrieval operation: 'notReady', 'notInService' or 'active'. That is, when queried, an existing conceptual row has only three states: it is either available for use by the managed device (the status column has value 'active'); it is not available for use by the managed device, though the agent has sufficient information to make it so (the status column has value 'notInService'); or, it is not available for use by the managed device, and an attempt to make it so would fail because the agent has insufficient information (the state column has value 'notReady'). For a detailed description of this object, please refer to SNMPv2-TC MIB.rw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.10.16.1.6
bcastStormMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.11
bcastStormTableTable of descriptive and status information about configuration of each switch ports(including expansion slot) in this system.
SEQUENCE OF BcastStormEntry
.1.3.6.1.4.1.259.6.10.57.1.11.1
bcastStormEntryAn entry in the table, containing information about configuration in one switch port of the switch.
BcastStormEntry
.1.3.6.1.4.1.259.6.10.57.1.11.1.1
bcastStormIfIndexThis is defined as ifIndex in the IF-MIB.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.11.1.1.1
bcastStormStatusWhether broadcast storm protection is enabled.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.11.1.1.2
bcastStormSampleTypeSample type. If this is pkt-rate(1), then bcastStormPktRate is valid. If this is octet-rate(2), then bcastStormOctetRate is valid. If this is percent(3), then bcastStormPercent is valid.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.11.1.1.3
bcastStormPktRateBroadcast storm threshold as packets per second.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.11.1.1.4
bcastStormOctetRateBroadcast storm threshold as octets per second.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.11.1.1.5
bcastStormPercentBroadcast storm threshold as percentage of bandwidth.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.11.1.1.6
vlanMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.12
vlanTableTable for VLAN configuration.
SEQUENCE OF VlanEntry
.1.3.6.1.4.1.259.6.10.57.1.12.1
vlanEntryEntry for VLAN configuration.
VlanEntry
.1.3.6.1.4.1.259.6.10.57.1.12.1.1
vlanIndexSame is dot1qVlanIndex in the Q-BRIDGE-MIB. This table has only one entry - the entry for the VLAN of the management interface.
Unsigned32
.1.3.6.1.4.1.259.6.10.57.1.12.1.1.1
vlanAddressMethodMethod to get the IP address.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.12.1.1.2
vlanPortTableTable for port configuration in VLAN.
SEQUENCE OF VlanPortEntry
.1.3.6.1.4.1.259.6.10.57.1.12.2
vlanPortEntryEntry for port configuration in VLAN.
VlanPortEntry
.1.3.6.1.4.1.259.6.10.57.1.12.2.1
vlanPortIndexThis is defined as ifIndex in the IF-MIB.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.12.2.1.1
vlanPortModeThis variable sets the 802.1Q VLAN mode. Setting it to hybrid(1) sets a hybrid link. Setting it to dot1qTrunk(2) sets a trunk link.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.12.2.1.2
priorityMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.13
prioIpPrecDscpStatusWhether IP precedence or DSCP look-up is enabled.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.13.1
prioIpPrecTableTable for IP precedence priority mapping.
SEQUENCE OF PrioIpPrecEntry
.1.3.6.1.4.1.259.6.10.57.1.13.2
prioIpPrecEntryEntry for IP precendence priority mapping.
PrioIpPrecEntry
.1.3.6.1.4.1.259.6.10.57.1.13.2.1
prioIpPrecPortThis is defined as ifIndex in the IF-MIB.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.13.2.1.2
prioIpPrecValuePrecedence value for this entry.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.13.2.1.3
prioIpPrecCosClass of service for this entry.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.13.2.1.4
prioIpPrecRestoreDefaultThis object is to restore IP Precedence settings of a port to default. To do this, write it to the value of ifIndex defined by the ifIndex in the IF-MIB. When read, this object always returns 0.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.13.3
prioIpDscpTableTable for IP DSCP priority mapping.
SEQUENCE OF PrioIpDscpEntry
.1.3.6.1.4.1.259.6.10.57.1.13.4
prioIpDscpEntryEntry for IP DSCP priority mapping.
PrioIpDscpEntry
.1.3.6.1.4.1.259.6.10.57.1.13.4.1
prioIpDscpPortThis is defined as ifIndex in the IF-MIB.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.13.4.1.1
prioIpDscpValueDSCP value for this entry.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.13.4.1.2
prioIpDscpCosClass of service for this entry.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.13.4.1.3
prioIpDscpRestoreDefaultThis object is to restore IP DSCP settings of a port to default. To do this, write it to the value of ifIndex defined by the ifIndex in the IF-MIB. When read, this object always returns 0.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.13.5
prioIpPortEnableStatusWhether IP Port priority look-up is enabled.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.13.6
prioIpPortTableTable for IP port priority mapping.
SEQUENCE OF PrioIpPortEntry
.1.3.6.1.4.1.259.6.10.57.1.13.7
prioIpPortEntryEntry for IP port priority mapping.
PrioIpPortEntry
.1.3.6.1.4.1.259.6.10.57.1.13.7.1
prioIpPortPhysPortThe port and the trunk (excluding trunk member) interface of the portTable. The interface identified by a particular value of this index is the same interface as identified by the same value of ifIndex in the IF-MIB.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.13.7.1.1
prioIpPortValueIP port for this value.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.13.7.1.2
prioIpPortCosClass of service for this entry.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.13.7.1.3
prioIpPortStatusWriting this to valid(1) creates an entry. Writing this to invalid(2) destroys an entry.rw
ValidStatus
.1.3.6.1.4.1.259.6.10.57.1.13.7.1.4
prioCopy
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.13.8
prioCopyIpPrecAction to copy IP Precedence settings from a source port to many destination ports. The first four octets represent an integer for the source port, in high-to-low (big-endian) order. Starting from the 5th octet is destination port list in a form described by PortList in the Q-BRIDGE-MIB. Writing this object will perform copy. Reading this object will always get a zero-length octet string.rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.13.8.1
prioCopyIpDscpAction to copy IP DSCP settings from a source port to many destination ports. The first four octets represent an integer for the source port, in high-to-low (big-endian) order. Starting from the 5th octet is destination port list in a form described by PortList in the Q-BRIDGE-MIB. Writing this object will perform copy. Reading this object will always get a zero-length octet string.rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.13.8.2
prioCopyIpPortAction to copy IP Port settings from a source port to many destination ports. The first four octets represent an integer for the source port, in high-to-low (big-endian) order. Starting from the 5th octet is destination port list in a form described by PortList in the Q-BRIDGE-MIB. Writing this object will perform copy. Reading this object will always get a zero-length octet string.rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.13.8.3
prioQueueModeThe global status for the prioQueue. wrr(1),strict(2)rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.13.10
prioWrrPortTableTable for per port weighted round robin (WRR).
SEQUENCE OF PrioWrrPortEntry
.1.3.6.1.4.1.259.6.10.57.1.13.12
prioWrrPortEntryEntry for per port weighted round robin (WRR).
PrioWrrPortEntry
.1.3.6.1.4.1.259.6.10.57.1.13.12.1
prioWrrPortIfIndexThe port interface of the prioWrrPortEntry. The interface identified by a particular value of this index is the same interface as identified by the same value of ifIndex in the IF-MIB.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.13.12.1.1
prioWrrPortTrafficClassTraffic class for this entry, as defined in dot1dTrafficClass in the P-BRIDGE-MIB. The actual maximum depends on the hardware, and is equal to dot1dPortNumTrafficClasses-1.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.13.12.1.2
prioWrrPortWeightWeight for this entry.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.13.12.1.3
trapDestMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.14
trapDestTableA list of trap destination entries.
SEQUENCE OF TrapDestEntry
.1.3.6.1.4.1.259.6.10.57.1.14.1
trapDestEntryThis entry includes a destination IP address to which to send traps for this community.
TrapDestEntry
.1.3.6.1.4.1.259.6.10.57.1.14.1.1
trapDestAddressThe address to send traps.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.14.1.1.1
trapDestCommunityA community to which this destination address belongs.rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.14.1.1.2
trapDestStatusWriting this to valid(1) creates an entry. Writing this to invalid(2) destroys an entry.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.14.1.1.3
trapDestVersionThis variables represent the version of the Trap we wish to send to trap Receiver. If the value is 1, mean we wish to send Version 1 trap. If the value is 2, mean we wish to send version 2 trap. If the value is 3, mean we wish to send version 3 trap.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.14.1.1.4
trapDestUdpPortDetermines the UDP port number of the trap that is to be sent to the trap Receiver.rw
Integer32 ( 1..65535)
.1.3.6.1.4.1.259.6.10.57.1.14.1.1.5
qosMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.16
rateLimitMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.16.1
rateLimitPortTableTable for rate limit of each port.
SEQUENCE OF RateLimitPortEntry
.1.3.6.1.4.1.259.6.10.57.1.16.1.2
rateLimitPortEntryEntry for rate limit of each port.
RateLimitPortEntry
.1.3.6.1.4.1.259.6.10.57.1.16.1.2.1
rlPortIndexThe port and the trunk (including trunk member) interface of the portTable. The interface identified by a particular value of this index is the same interface as identified by the same value of ifIndex in the IF-MIB.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.16.1.2.1.1
rlPortInputLimitValue of the input rate limit. Its unit is megabits per second. For a 100 Mb/s port, the range is 1 to 100. For a 1000 Mb/s port, the range is 1 to 1000.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.16.1.2.1.2
rlPortOutputLimitValue of the output rate limit. Its unit is megabits per second. For a 100 Mb/s port, the range is 1 to 100. For a 1000 Mb/s port, the range is 1 to 1000.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.16.1.2.1.3
rlPortInputStatusWhether input rate limit is enabled for this port.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.16.1.2.1.6
rlPortOutputStatusWhether output rate limit is enabled for this port.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.16.1.2.1.7
markerMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.16.2
markerTableThe marker table.
SEQUENCE OF MarkerEntry
.1.3.6.1.4.1.259.6.10.57.1.16.2.1
markerEntryEntry for marker table.
MarkerEntry
.1.3.6.1.4.1.259.6.10.57.1.16.2.1.1
markerIfIndexThe interface index of the marker table. The interface identified by a particular value of this index is the same interface as identified by the same value of ifIndex in the IF-MIB.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.16.2.1.1.1
markerAclNameThe name of an ACL. Within a feature the name is unique used to identifies the list to which the entry belongs in the device.
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.16.2.1.1.2
markerActionBitListThe marker action bit list, in right to left order. for example: 0x3(11 in binary) means dscp(0) and precedence(1) 0x4(100 in binary) means priority(2)rw
Bits
.1.3.6.1.4.1.259.6.10.57.1.16.2.1.1.3
markerDscpThe Dscp value of the marker entry.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.16.2.1.1.4
markerPrecedenceThe precedence value of the marker entry.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.16.2.1.1.5
markerPriorityThe priority value of the marker entry.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.16.2.1.1.6
markerStatusThe status of this marker conceptual row entry. This object is used to manage creation, deletion and modification of rows in this table. An entry may not exist in the active state unless all objects in the entry have an appropriate value. Once a row becomes active, value in any other column within such row cannot be modified. ip ace created by SNMP basically belong to ip extended ACL. Valid values are: active(1); notInService(2); notReady(3); createAndGo(4); createAndWait(5); destroy(6). Set this value to createAndGo(4) to ceate a new entry and make it active at once, set to createAndWait(5) means create a new entry but not active now, set to destroy(6) to delete an entry You may get one of the following value when you try to read this variable: active(1); notInService(2); notReady(3) representing the current status of this entryrw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.16.2.1.1.7
cosMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.16.3
prioAclToCosMappingTableTable for Acl to Cos Mapping.
SEQUENCE OF PrioAclToCosMappingEntry
.1.3.6.1.4.1.259.6.10.57.1.16.3.1
prioAclToCosMappingEntryEntry for Acl to Cos Mapping.
PrioAclToCosMappingEntry
.1.3.6.1.4.1.259.6.10.57.1.16.3.1.1
prioAclToCosMappingIfIndexThe port interface of the prioAclToCosMappingEntry. The interface identified by a particular value of this index is the same interface as identified by the same value of ifIndex in the IF-MIB.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.16.3.1.1.1
prioAclToCosMappingAclNameThe name of an IP ACL. Within a feature the name is unique used to identifies the list to which the entry belongs in the device.
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.16.3.1.1.2
prioAclToCosMappingCosValueCos value of the prioAclToCosMappingTable.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.16.3.1.1.3
prioAclToCosMappingStatusThe status of this acl to cos mapping conceptual row entry. This object is used to manage creation, deletion and modification of rows in this table. An entry may not exist in the active state unless all objects in the entry have an appropriate value. Once a row becomes active, value in any other column within such row cannot be modified. ip ace created by SNMP basically belong to ip extended ACL. Valid values are: active(1); notInService(2); notReady(3); createAndGo(4); createAndWait(5); destroy(6). Set this value to createAndGo(4) to ceate a new entry and make it active at once, set to createAndWait(5) means create a new entry but not active now, set to destroy(6) to delete an entry You may get one of the following value when you try to read this variable: active(1); notInService(2); notReady(3) representing the current status of this entry.rw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.16.3.1.1.4
securityMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.17
portSecurityMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.17.2
portSecPortTableThe Port Security(MAC bindind) Table
SEQUENCE OF PortSecPortEntry
.1.3.6.1.4.1.259.6.10.57.1.17.2.1
portSecPortEntryThe entry of portSecPortTable
PortSecPortEntry
.1.3.6.1.4.1.259.6.10.57.1.17.2.1.1
portSecPortIndexThe port and the trunk (excluding trunk members) interface of the portTable. The interface identified by a particular value of this index is the same interface as identified by the same value of ifIndex in the IF-MIB.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.2.1.1.1
portSecPortStatusSet enabled(1) to enable port security and set disabled(2) to disable port security.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.17.2.1.1.2
portSecActionThe corresponding actions that will take place when a port is under intruded, when this variable is set to none(1), no action will perform, when this variable is set to trap(2), a swPortSecurityTrap trap will send, when this variable is set to shutdown(3), the port will shutdown, when this variable is set to trapAndShutdown(4), a swPortSecurityTrap will send and the port will shutdown.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.17.2.1.1.3
portSecMaxMacCountThe maximun number of MAC addresses that will be learned and locked. When we change the value of this variable, if the portSecPortStatus is enabled, we will discard all secure MAC and begin to learn again, until the number of MAC has reached this value, and only the secure MAC addresses can enter this port. If the portSecPortStatus is disabled, we will begin to learn the MAC, and auto enabled the portSecPortStatus when the MAC has reached this value.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.2.1.1.4
radiusMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.17.4
radiusServerAddressIP address of RADIUS server.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.17.4.1
radiusServerPortNumberIP port number of RADIUS server.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.17.4.2
radiusServerKeyKey for RADIUS. This variable can only be written. When this variable is read, it always returns a zero-length string.rw
DisplayString (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.17.4.3
radiusServerRetransmitMaximum number of retransmissions for RADIUS.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.17.4.4
radiusServerTimeoutTimeout for RADIUS.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.17.4.5
tacacsMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.17.5
tacacsServerAddressIP address of TACACS server.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.17.5.1
tacacsServerPortNumberIP port number of TACACS server.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.5.2
tacacsServerKeyKey for TACACS.rw
DisplayString (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.17.5.3
sshMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.17.6
sshServerStatusThe status of Secure Shell Server, set this value to 1 to enable SSH server, set this value to 2 to disable the SSH server.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.17.6.1
sshServerMajorVersionThe major version of the SSH Server.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.6.2
sshServerMinorVersionThe minor version of the SSH Server.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.6.3
sshTimeoutThe time interval that the router waits for the SSH client to respond. The range is 1-120.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.17.6.4
sshAuthRetriesThe number of attempts after which the interface is reset. The range is 1-5.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.17.6.5
sshConnInfoTableThe table for Secure Shell Connection.
SEQUENCE OF SshConnInfoEntry
.1.3.6.1.4.1.259.6.10.57.1.17.6.6
sshConnInfoEntryThe conceptual row for sshConnInfoTable.
SshConnInfoEntry
.1.3.6.1.4.1.259.6.10.57.1.17.6.6.1
sshConnIDThe connection ID of the Secure Shell Connection.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.6.6.1.1
sshConnMajorVersionThe SSH major version.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.6.6.1.2
sshConnMinorVersionThe SSH minor version.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.6.6.1.3
sshConnStatusThe SSH connection State. negotiationStart(1) mean the SSH is in its negotiation start state, authenticationStart(2) mean the SSH is in authentication start state, sessionStart(3) mean the SSH is in session start State.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.17.6.6.1.5
sshConnUserNameThe user name of the connection.ro
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.17.6.6.1.6
sshDisconnectSet the variables to disconnect to disconnect the connection, when read, this variables always return noDisconnect(1).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.17.6.6.1.7
sshConnEncryptionTypeStrThe encryption type of the SSH.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.6.1.8
sshKeySizeThe SSH server key size.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.17.6.7
sshRsaHostKey1The total length of RSA host key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshRsaHostKey1: part 1 of the RSA host key (1-128) sshRsaHostKey2: part 2 of the RSA host key (129-256) sshRsaHostKey3: part 3 of the RSA host key (257-384) sshRsaHostKey4: part 4 of the RSA host key (385-512) sshRsaHostKey5: part 5 of the RSA host key (513-640) sshRsaHostKey6: part 6 of the RSA host key (641-768) sshRsaHostKey7: part 7 of the RSA host key (769-896) sshRsaHostKey8: part 8 of the RSA host key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshRsaHostKey1, and a string which length is 1 in sshRsaHostKey2, moreover, sshRsaHostKey3 to sshRsaHostKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.8
sshRsaHostKey2The total length of RSA host key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshRsaHostKey1: part 1 of the RSA host key (1-128) sshRsaHostKey2: part 2 of the RSA host key (129-256) sshRsaHostKey3: part 3 of the RSA host key (257-384) sshRsaHostKey4: part 4 of the RSA host key (385-512) sshRsaHostKey5: part 5 of the RSA host key (513-640) sshRsaHostKey6: part 6 of the RSA host key (641-768) sshRsaHostKey7: part 7 of the RSA host key (769-896) sshRsaHostKey8: part 8 of the RSA host key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshRsaHostKey1, and a string which length is 1 in sshRsaHostKey2, moreover, sshRsaHostKey3 to sshRsaHostKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.9
sshRsaHostKey3The total length of RSA host key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshRsaHostKey1: part 1 of the RSA host key (1-128) sshRsaHostKey2: part 2 of the RSA host key (129-256) sshRsaHostKey3: part 3 of the RSA host key (257-384) sshRsaHostKey4: part 4 of the RSA host key (385-512) sshRsaHostKey5: part 5 of the RSA host key (513-640) sshRsaHostKey6: part 6 of the RSA host key (641-768) sshRsaHostKey7: part 7 of the RSA host key (769-896) sshRsaHostKey8: part 8 of the RSA host key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshRsaHostKey1, and a string which length is 1 in sshRsaHostKey2, moreover, sshRsaHostKey3 to sshRsaHostKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.10
sshRsaHostKey4The total length of RSA host key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshRsaHostKey1: part 1 of the RSA host key (1-128) sshRsaHostKey2: part 2 of the RSA host key (129-256) sshRsaHostKey3: part 3 of the RSA host key (257-384) sshRsaHostKey4: part 4 of the RSA host key (385-512) sshRsaHostKey5: part 5 of the RSA host key (513-640) sshRsaHostKey6: part 6 of the RSA host key (641-768) sshRsaHostKey7: part 7 of the RSA host key (769-896) sshRsaHostKey8: part 8 of the RSA host key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshRsaHostKey1, and a string which length is 1 in sshRsaHostKey2, moreover, sshRsaHostKey3 to sshRsaHostKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.11
sshRsaHostKey5The total length of RSA host key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshRsaHostKey1: part 1 of the RSA host key (1-128) sshRsaHostKey2: part 2 of the RSA host key (129-256) sshRsaHostKey3: part 3 of the RSA host key (257-384) sshRsaHostKey4: part 4 of the RSA host key (385-512) sshRsaHostKey5: part 5 of the RSA host key (513-640) sshRsaHostKey6: part 6 of the RSA host key (641-768) sshRsaHostKey7: part 7 of the RSA host key (769-896) sshRsaHostKey8: part 8 of the RSA host key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshRsaHostKey1, and a string which length is 1 in sshRsaHostKey2, moreover, sshRsaHostKey3 to sshRsaHostKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.12
sshRsaHostKey6The total length of RSA host key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshRsaHostKey1: part 1 of the RSA host key (1-128) sshRsaHostKey2: part 2 of the RSA host key (129-256) sshRsaHostKey3: part 3 of the RSA host key (257-384) sshRsaHostKey4: part 4 of the RSA host key (385-512) sshRsaHostKey5: part 5 of the RSA host key (513-640) sshRsaHostKey6: part 6 of the RSA host key (641-768) sshRsaHostKey7: part 7 of the RSA host key (769-896) sshRsaHostKey8: part 8 of the RSA host key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshRsaHostKey1, and a string which length is 1 in sshRsaHostKey2, moreover, sshRsaHostKey3 to sshRsaHostKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.13
sshRsaHostKey7The total length of RSA host key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshRsaHostKey1: part 1 of the RSA host key (1-128) sshRsaHostKey2: part 2 of the RSA host key (129-256) sshRsaHostKey3: part 3 of the RSA host key (257-384) sshRsaHostKey4: part 4 of the RSA host key (385-512) sshRsaHostKey5: part 5 of the RSA host key (513-640) sshRsaHostKey6: part 6 of the RSA host key (641-768) sshRsaHostKey7: part 7 of the RSA host key (769-896) sshRsaHostKey8: part 8 of the RSA host key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshRsaHostKey1, and a string which length is 1 in sshRsaHostKey2, moreover, sshRsaHostKey3 to sshRsaHostKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.14
sshRsaHostKey8The total length of RSA host key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshRsaHostKey1: part 1 of the RSA host key (1-128) sshRsaHostKey2: part 2 of the RSA host key (129-256) sshRsaHostKey3: part 3 of the RSA host key (257-384) sshRsaHostKey4: part 4 of the RSA host key (385-512) sshRsaHostKey5: part 5 of the RSA host key (513-640) sshRsaHostKey6: part 6 of the RSA host key (641-768) sshRsaHostKey7: part 7 of the RSA host key (769-896) sshRsaHostKey8: part 8 of the RSA host key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshRsaHostKey1, and a string which length is 1 in sshRsaHostKey2, moreover, sshRsaHostKey3 to sshRsaHostKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.15
sshDsaHostKey1The total length of DSA host key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshDsaHostKey1: part 1 of the DSA host key (1-128) sshDsaHostKey2: part 2 of the DSA host key (129-256) sshDsaHostKey3: part 3 of the DSA host key (257-384) sshDsaHostKey4: part 4 of the DSA host key (385-512) sshDsaHostKey5: part 5 of the DSA host key (513-640) sshDsaHostKey6: part 6 of the DSA host key (641-768) sshDsaHostKey7: part 7 of the DSA host key (769-896) sshDsaHostKey8: part 8 of the DSA host key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshDsaHostKey1, and a string which length is 1 in sshDsaHostKey2, moreover, sshDsaHostKey3 to sshDsaHostKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.16
sshDsaHostKey2The total length of DSA host key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshDsaHostKey1: part 1 of the DSA host key (1-128) sshDsaHostKey2: part 2 of the DSA host key (129-256) sshDsaHostKey3: part 3 of the DSA host key (257-384) sshDsaHostKey4: part 4 of the DSA host key (385-512) sshDsaHostKey5: part 5 of the DSA host key (513-640) sshDsaHostKey6: part 6 of the DSA host key (641-768) sshDsaHostKey7: part 7 of the DSA host key (769-896) sshDsaHostKey8: part 8 of the DSA host key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshDsaHostKey1, and a string which length is 1 in sshDsaHostKey2, moreover, sshDsaHostKey3 to sshDsaHostKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.17
sshDsaHostKey3The total length of DSA host key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshDsaHostKey1: part 1 of the DSA host key (1-128) sshDsaHostKey2: part 2 of the DSA host key (129-256) sshDsaHostKey3: part 3 of the DSA host key (257-384) sshDsaHostKey4: part 4 of the DSA host key (385-512) sshDsaHostKey5: part 5 of the DSA host key (513-640) sshDsaHostKey6: part 6 of the DSA host key (641-768) sshDsaHostKey7: part 7 of the DSA host key (769-896) sshDsaHostKey8: part 8 of the DSA host key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshDsaHostKey1, and a string which length is 1 in sshDsaHostKey2, moreover, sshDsaHostKey3 to sshDsaHostKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.18
sshDsaHostKey4The total length of DSA host key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshDsaHostKey1: part 1 of the DSA host key (1-128) sshDsaHostKey2: part 2 of the DSA host key (129-256) sshDsaHostKey3: part 3 of the DSA host key (257-384) sshDsaHostKey4: part 4 of the DSA host key (385-512) sshDsaHostKey5: part 5 of the DSA host key (513-640) sshDsaHostKey6: part 6 of the DSA host key (641-768) sshDsaHostKey7: part 7 of the DSA host key (769-896) sshDsaHostKey8: part 8 of the DSA host key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshDsaHostKey1, and a string which length is 1 in sshDsaHostKey2, moreover, sshDsaHostKey3 to sshDsaHostKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.19
sshDsaHostKey5The total length of DSA host key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshDsaHostKey1: part 1 of the DSA host key (1-128) sshDsaHostKey2: part 2 of the DSA host key (129-256) sshDsaHostKey3: part 3 of the DSA host key (257-384) sshDsaHostKey4: part 4 of the DSA host key (385-512) sshDsaHostKey5: part 5 of the DSA host key (513-640) sshDsaHostKey6: part 6 of the DSA host key (641-768) sshDsaHostKey7: part 7 of the DSA host key (769-896) sshDsaHostKey8: part 8 of the DSA host key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshDsaHostKey1, and a string which length is 1 in sshDsaHostKey2, moreover, sshDsaHostKey3 to sshDsaHostKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.20
sshDsaHostKey6The total length of DSA host key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshDsaHostKey1: part 1 of the DSA host key (1-128) sshDsaHostKey2: part 2 of the DSA host key (129-256) sshDsaHostKey3: part 3 of the DSA host key (257-384) sshDsaHostKey4: part 4 of the DSA host key (385-512) sshDsaHostKey5: part 5 of the DSA host key (513-640) sshDsaHostKey6: part 6 of the DSA host key (641-768) sshDsaHostKey7: part 7 of the DSA host key (769-896) sshDsaHostKey8: part 8 of the DSA host key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshDsaHostKey1, and a string which length is 1 in sshDsaHostKey2, moreover, sshDsaHostKey3 to sshDsaHostKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.21
sshDsaHostKey7The total length of DSA host key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshDsaHostKey1: part 1 of the DSA host key (1-128) sshDsaHostKey2: part 2 of the DSA host key (129-256) sshDsaHostKey3: part 3 of the DSA host key (257-384) sshDsaHostKey4: part 4 of the DSA host key (385-512) sshDsaHostKey5: part 5 of the DSA host key (513-640) sshDsaHostKey6: part 6 of the DSA host key (641-768) sshDsaHostKey7: part 7 of the DSA host key (769-896) sshDsaHostKey8: part 8 of the DSA host key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshDsaHostKey1, and a string which length is 1 in sshDsaHostKey2, moreover, sshDsaHostKey3 to sshDsaHostKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.22
sshDsaHostKey8The total length of DSA host key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshDsaHostKey1: part 1 of the DSA host key (1-128) sshDsaHostKey2: part 2 of the DSA host key (129-256) sshDsaHostKey3: part 3 of the DSA host key (257-384) sshDsaHostKey4: part 4 of the DSA host key (385-512) sshDsaHostKey5: part 5 of the DSA host key (513-640) sshDsaHostKey6: part 6 of the DSA host key (641-768) sshDsaHostKey7: part 7 of the DSA host key (769-896) sshDsaHostKey8: part 8 of the DSA host key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshDsaHostKey1, and a string which length is 1 in sshDsaHostKey2, moreover, sshDsaHostKey3 to sshDsaHostKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.23
sshHostKeyGenActionThis variable is for host key generating. For the set behavior: set it to genRsaKey(2) to generate the RSA host key, genDsaKey(3) to generate the DSA host key, if genBothKeys(4) is set, both RSA and DSA host key are generated. For the get behavior: you will get genRsaKey(2), genDsaKey(3) or genBothKeys(4) when the key gen action is in progress. otherwise, you will get noGen(1).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.17.6.24
sshHostKeyGenStatusThe result of the last KeyGen status. if no Key gen action has been perform you will get unknown(1) status.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.17.6.25
sshHostKeySaveActionTo save host key from memory to flash. For the set behavior: set it to save(2) to perform the save operation. For the get behavior: you will get save(1) when the save action is in progress. otherwise, you will get noSave(1).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.17.6.26
sshHostKeySaveStatusThe result of the last savekey status. if no save action has been perform you will get unknown(1) status.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.17.6.27
sshHostKeyDelActionTo delete the host key. For the set behavior: set it to delRsaKey(2) to delete the RSA host key, delDsaKey(3) to delete the DSA host key, or delBothKeys(4) to delete both RSA and DSA host key. For the get behavior: you will get delRsaKey(2), delDsaKey(3) or delBothKeys(4) when the delete operation is in progress. otherwise, you will get noDel(1).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.17.6.28
sshUserTableThe conceptual table of all of sshUserEntry
SEQUENCE OF SshUserEntry
.1.3.6.1.4.1.259.6.10.57.1.17.6.29
sshUserEntryThe conceptual row for sshUserTable.
SshUserEntry
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1
sshUserNameUser Name.
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.1
sshUserRsaKey1The total length of RSA user key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshUserRsaKey1: part 1 of the RSA user key (1-128) sshUserRsaKey2: part 2 of the RSA user key (129-256) sshUserRsaKey3: part 3 of the RSA user key (257-384) sshUserRsaKey4: part 4 of the RSA user key (385-512) sshUserRsaKey5: part 5 of the RSA user key (513-640) sshUserRsaKey6: part 6 of the RSA user key (641-768) sshUserRsaKey7: part 7 of the RSA user key (769-896) sshUserRsaKey8: part 8 of the RSA user key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshUserRsaKey1, and a string which length is 1 in sshUserRsaKey2, moreover, sshUserRsaKey3 to sshUserRsaKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.2
sshUserRsaKey2The total length of RSA user key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshUserRsaKey1: part 1 of the RSA user key (1-128) sshUserRsaKey2: part 2 of the RSA user key (129-256) sshUserRsaKey3: part 3 of the RSA user key (257-384) sshUserRsaKey4: part 4 of the RSA user key (385-512) sshUserRsaKey5: part 5 of the RSA user key (513-640) sshUserRsaKey6: part 6 of the RSA user key (641-768) sshUserRsaKey7: part 7 of the RSA user key (769-896) sshUserRsaKey8: part 8 of the RSA user key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshUserRsaKey1, and a string which length is 1 in sshUserRsaKey2, moreover, sshUserRsaKey3 to sshUserRsaKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.3
sshUserRsaKey3The total length of RSA user key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshUserRsaKey1: part 1 of the RSA user key (1-128) sshUserRsaKey2: part 2 of the RSA user key (129-256) sshUserRsaKey3: part 3 of the RSA user key (257-384) sshUserRsaKey4: part 4 of the RSA user key (385-512) sshUserRsaKey5: part 5 of the RSA user key (513-640) sshUserRsaKey6: part 6 of the RSA user key (641-768) sshUserRsaKey7: part 7 of the RSA user key (769-896) sshUserRsaKey8: part 8 of the RSA user key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshUserRsaKey1, and a string which length is 1 in sshUserRsaKey2, moreover, sshUserRsaKey3 to sshUserRsaKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.4
sshUserRsaKey4The total length of RSA user key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshUserRsaKey1: part 1 of the RSA user key (1-128) sshUserRsaKey2: part 2 of the RSA user key (129-256) sshUserRsaKey3: part 3 of the RSA user key (257-384) sshUserRsaKey4: part 4 of the RSA user key (385-512) sshUserRsaKey5: part 5 of the RSA user key (513-640) sshUserRsaKey6: part 6 of the RSA user key (641-768) sshUserRsaKey7: part 7 of the RSA user key (769-896) sshUserRsaKey8: part 8 of the RSA user key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshUserRsaKey1, and a string which length is 1 in sshUserRsaKey2, moreover, sshUserRsaKey3 to sshUserRsaKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.5
sshUserRsaKey5The total length of RSA user key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshUserRsaKey1: part 1 of the RSA user key (1-128) sshUserRsaKey2: part 2 of the RSA user key (129-256) sshUserRsaKey3: part 3 of the RSA user key (257-384) sshUserRsaKey4: part 4 of the RSA user key (385-512) sshUserRsaKey5: part 5 of the RSA user key (513-640) sshUserRsaKey6: part 6 of the RSA user key (641-768) sshUserRsaKey7: part 7 of the RSA user key (769-896) sshUserRsaKey8: part 8 of the RSA user key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshUserRsaKey1, and a string which length is 1 in sshUserRsaKey2, moreover, sshUserRsaKey3 to sshUserRsaKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.6
sshUserRsaKey6The total length of RSA user key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshUserRsaKey1: part 1 of the RSA user key (1-128) sshUserRsaKey2: part 2 of the RSA user key (129-256) sshUserRsaKey3: part 3 of the RSA user key (257-384) sshUserRsaKey4: part 4 of the RSA user key (385-512) sshUserRsaKey5: part 5 of the RSA user key (513-640) sshUserRsaKey6: part 6 of the RSA user key (641-768) sshUserRsaKey7: part 7 of the RSA user key (769-896) sshUserRsaKey8: part 8 of the RSA user key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshUserRsaKey1, and a string which length is 1 in sshUserRsaKey2, moreover, sshUserRsaKey3 to sshUserRsaKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.7
sshUserRsaKey7The total length of RSA user key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshUserRsaKey1: part 1 of the RSA user key (1-128) sshUserRsaKey2: part 2 of the RSA user key (129-256) sshUserRsaKey3: part 3 of the RSA user key (257-384) sshUserRsaKey4: part 4 of the RSA user key (385-512) sshUserRsaKey5: part 5 of the RSA user key (513-640) sshUserRsaKey6: part 6 of the RSA user key (641-768) sshUserRsaKey7: part 7 of the RSA user key (769-896) sshUserRsaKey8: part 8 of the RSA user key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshUserRsaKey1, and a string which length is 1 in sshUserRsaKey2, moreover, sshUserRsaKey3 to sshUserRsaKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.8
sshUserRsaKey8The total length of RSA user key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshUserRsaKey1: part 1 of the RSA user key (1-128) sshUserRsaKey2: part 2 of the RSA user key (129-256) sshUserRsaKey3: part 3 of the RSA user key (257-384) sshUserRsaKey4: part 4 of the RSA user key (385-512) sshUserRsaKey5: part 5 of the RSA user key (513-640) sshUserRsaKey6: part 6 of the RSA user key (641-768) sshUserRsaKey7: part 7 of the RSA user key (769-896) sshUserRsaKey8: part 8 of the RSA user key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshUserRsaKey1, and a string which length is 1 in sshUserRsaKey2, moreover, sshUserRsaKey3 to sshUserRsaKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.9
sshUserDsaKey1The total length of DSA user key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshUserRsaKey1: part 1 of the DSA user key (1-128) sshUserRsaKey2: part 2 of the DSA user key (129-256) sshUserRsaKey3: part 3 of the DSA user key (257-384) sshUserRsaKey4: part 4 of the DSA user key (385-512) sshUserRsaKey5: part 5 of the DSA user key (513-640) sshUserRsaKey6: part 6 of the DSA user key (641-768) sshUserRsaKey7: part 7 of the DSA user key (769-896) sshUserRsaKey8: part 8 of the DSA user key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshUserDsaKey1, and a string which length is 1 in sshUserDsaKey2, moreover, sshUserDsaKey3 to sshUserDsaKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.10
sshUserDsaKey2The total length of DSA user key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshUserRsaKey1: part 1 of the DSA user key (1-128) sshUserRsaKey2: part 2 of the DSA user key (129-256) sshUserRsaKey3: part 3 of the DSA user key (257-384) sshUserRsaKey4: part 4 of the DSA user key (385-512) sshUserRsaKey5: part 5 of the DSA user key (513-640) sshUserRsaKey6: part 6 of the DSA user key (641-768) sshUserRsaKey7: part 7 of the DSA user key (769-896) sshUserRsaKey8: part 8 of the DSA user key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshUserDsaKey1, and a string which length is 1 in sshUserDsaKey2, moreover, sshUserDsaKey3 to sshUserDsaKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.11
sshUserDsaKey3The total length of DSA user key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshUserRsaKey1: part 1 of the DSA user key (1-128) sshUserRsaKey2: part 2 of the DSA user key (129-256) sshUserRsaKey3: part 3 of the DSA user key (257-384) sshUserRsaKey4: part 4 of the DSA user key (385-512) sshUserRsaKey5: part 5 of the DSA user key (513-640) sshUserRsaKey6: part 6 of the DSA user key (641-768) sshUserRsaKey7: part 7 of the DSA user key (769-896) sshUserRsaKey8: part 8 of the DSA user key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshUserDsaKey1, and a string which length is 1 in sshUserDsaKey2, moreover, sshUserDsaKey3 to sshUserDsaKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.12
sshUserDsaKey4The total length of DSA user key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshUserRsaKey1: part 1 of the DSA user key (1-128) sshUserRsaKey2: part 2 of the DSA user key (129-256) sshUserRsaKey3: part 3 of the DSA user key (257-384) sshUserRsaKey4: part 4 of the DSA user key (385-512) sshUserRsaKey5: part 5 of the DSA user key (513-640) sshUserRsaKey6: part 6 of the DSA user key (641-768) sshUserRsaKey7: part 7 of the DSA user key (769-896) sshUserRsaKey8: part 8 of the DSA user key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshUserDsaKey1, and a string which length is 1 in sshUserDsaKey2, moreover, sshUserDsaKey3 to sshUserDsaKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.13
sshUserDsaKey5The total length of DSA user key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshUserRsaKey1: part 1 of the DSA user key (1-128) sshUserRsaKey2: part 2 of the DSA user key (129-256) sshUserRsaKey3: part 3 of the DSA user key (257-384) sshUserRsaKey4: part 4 of the DSA user key (385-512) sshUserRsaKey5: part 5 of the DSA user key (513-640) sshUserRsaKey6: part 6 of the DSA user key (641-768) sshUserRsaKey7: part 7 of the DSA user key (769-896) sshUserRsaKey8: part 8 of the DSA user key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshUserDsaKey1, and a string which length is 1 in sshUserDsaKey2, moreover, sshUserDsaKey3 to sshUserDsaKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.14
sshUserDsaKey6The total length of DSA user key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshUserRsaKey1: part 1 of the DSA user key (1-128) sshUserRsaKey2: part 2 of the DSA user key (129-256) sshUserRsaKey3: part 3 of the DSA user key (257-384) sshUserRsaKey4: part 4 of the DSA user key (385-512) sshUserRsaKey5: part 5 of the DSA user key (513-640) sshUserRsaKey6: part 6 of the DSA user key (641-768) sshUserRsaKey7: part 7 of the DSA user key (769-896) sshUserRsaKey8: part 8 of the DSA user key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshUserDsaKey1, and a string which length is 1 in sshUserDsaKey2, moreover, sshUserDsaKey3 to sshUserDsaKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.15
sshUserDsaKey7The total length of DSA user key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshUserRsaKey1: part 1 of the DSA user key (1-128) sshUserRsaKey2: part 2 of the DSA user key (129-256) sshUserRsaKey3: part 3 of the DSA user key (257-384) sshUserRsaKey4: part 4 of the DSA user key (385-512) sshUserRsaKey5: part 5 of the DSA user key (513-640) sshUserRsaKey6: part 6 of the DSA user key (641-768) sshUserRsaKey7: part 7 of the DSA user key (769-896) sshUserRsaKey8: part 8 of the DSA user key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshUserDsaKey1, and a string which length is 1 in sshUserDsaKey2, moreover, sshUserDsaKey3 to sshUserDsaKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.16
sshUserDsaKey8The total length of DSA user key is 1024 characters, it is divided into 8 parts and store in 8 separated mib variables as below: sshUserRsaKey1: part 1 of the DSA user key (1-128) sshUserRsaKey2: part 2 of the DSA user key (129-256) sshUserRsaKey3: part 3 of the DSA user key (257-384) sshUserRsaKey4: part 4 of the DSA user key (385-512) sshUserRsaKey5: part 5 of the DSA user key (513-640) sshUserRsaKey6: part 6 of the DSA user key (641-768) sshUserRsaKey7: part 7 of the DSA user key (769-896) sshUserRsaKey8: part 8 of the DSA user key (897-1024) Please note that if the key string is less then 1024 characters, the remaining part of the string will filled by zero-length string. for example, if the length of the key is 129, we will get a string which length is 128 in sshUserDsaKey1, and a string which length is 1 in sshUserDsaKey2, moreover, sshUserDsaKey3 to sshUserDsaKey8 will all got zero-length string.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.17
sshUserKeyDelActionTo delete the user key. For the set behavior: set it to delRsaKey(2) to delete the RSA user key, delDsaKey(3) to delete the DSA user key, or delBothKeys(4) to delete both RSA and DSA user key. For the get behavior: you will get delRsaKey(2), delDsaKey(3) or delBothKeys(4) when the delete operation is in progress. otherwise, you will get noDel(1).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.17.6.29.1.18
aclMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.17.7
aclIpAceTableThe conceptual table of all of aclIpAceEntry.
SEQUENCE OF AclIpAceEntry
.1.3.6.1.4.1.259.6.10.57.1.17.7.1
aclIpAceEntryThe conceptual row for aclIpAceTable.
AclIpAceEntry
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1
aclIpAceNameThe name of an ACL. Within a feature a unique name is used to identify the list to which the entry belongs in the device.
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.1
aclIpAceIndexThe unique index of an ACE within an ACL.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.2
aclIpAcePrecedenceSpecifies the IP precedence value to be matched against. This object cannot not be configured when the status of the entry, aclIpAceStatus, is active(1).ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.3
aclIpAceActionIndicates the action to be taken if a packet matches this ACE. This object cannot not be configured when the status of the entry, aclIpAceStatus, is active(1).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.4
aclIpAceSourceIpAddrThe specified source IP address. The packet's source address is AND-ed with the value of aclIpAceSourceIpAddrBitmask and then compared against the value of this object. This object cannot be configured when the status of the entry, aclIpAceStatus, is active(1).rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.5
aclIpAceSourceIpAddrBitmaskThe specified source IP address mask. The packet's destination address is AND-ed with the value of aclIpAceSourceIpAddr and then compared against the value of this object.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.6
aclIpAceDestIpAddrThe specified destination IP address. The packet's destination address is AND-ed with the value of aclIpAceDestIpAddrBitmask and then compared against the value of this object.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.7
aclIpAceDestIpAddrBitmaskThe specified destination IP address mask.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.8
aclIpAceProtocolThe protocol number field in the IP header used to indicate the higher layer protocol as specified in RFC 1700. A value value of 0 matches every IP packet. The object=256, means 'any' For example : 0 is IP, 1 is ICMP, 2 is IGMP, 4 is IP in IP encapsulation, 6 is TCP, 9 is IGRP, 17 is UDP, 47 is GRE, 50 is ESP, 51 is AH, 88 is IGRP, 89 is OSPF, 94 is KA9Q/NOS compatible IP over IP, 103 is PIMv2, 108 is PCP.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.9
aclIpAcePrecSpecifies the IP precedence value to be matched against. This object cannot be configured when the status of the entry, aclIpAceStatus, is active(1). The value of this object is ignored whenever the value of aclIpAcePrec object is 8.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.10
aclIpAceTosSpecifies the IP ToS facility value to be matched against. This object cannot be configured when the status of the entry, aclIpAceStatus, is active(1). The value of this object is ignored whenever the value of aclIpAcePrec object is 9.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.11
aclIpAceDscpSpecifies the DSCP value to be matched against. This object cannot be configured when the status of the entry, aclIpAceStatus, is active(1). The value of this object is ignored whenever the value of aclIpAcePrec object is 64.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.12
aclIpAceSourcePortOpIndicates how a packet's source TCP/UDP port number is to be compared. noOperator(1), which is the default value, means no comparison is to be made with the source TCP/UDP port number.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.13
aclIpAceMinSourcePortIf the aclIpAceSourcePortOp is range(3), this indicates the lower bound of the TCP/UDP port number value range.rw
Integer32 (0..'FFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.14
aclIpAceMaxSourcePortIf the aclIpAceSourcePortOp is range(3), this indicates the upper bound of the TCP/UDP port number value range.rw
Integer32 (0..'FFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.15
aclIpAceSourcePortBitmaskIf the aclIpAceSourcePortOp is equal(2), this indicates the bitmask of the aclIpAceMinSourcePort.rw
Integer32 (0..'FFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.16
aclIpAceDestPortOpIndicates how a packet's destination TCP/UDP port number is to be compared. noOperator(1), which is the default value, means that no comparison is to be made with the destination TCP/UDP port number.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.17
aclIpAceMinDestPortIf the aclIpAceDestPortOp is range(3), this indicates the lower bound of the TCP/UDP port number value range.rw
Integer32 (0..'FFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.18
aclIpAceMaxDestPortIf the aclIpAceDestPortOp is range(3), this indicates the upper bound of the TCP/UDP port number value range.rw
Integer32 (0..'FFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.19
aclIpAceDestPortBitmaskIf the aclIpAceDestPortOp is equal(2), this indicates the bitmask of the aclIpAceMinDestPort.rw
Integer32 (0..'FFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.20
aclIpAceControlCodeIndicates how the control flags of TCP packets are to be compared. aceIpControlCode is AND-ed with aceIpControlCodeBitmask.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.21
aclIpAceControlCodeBitmaskIndicates how the control flags of TCP packets are to be compared. It can be used to check multiple flags of the FIN, SYN, RST, PSH, ACK, URG by the sum of FIN=1, SYN=2, RST=4, PSH=8, ACK=16, URG=32.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.22
aclIpAceStatusThe status of this conceptual row entry. This object isused to manage the creation and deletion of conceptual rows. The status column has six defined values: - 'active', which indicates that the conceptual row is available for use by the managed device; - 'notInService', which indicates that the conceptual row exists in the agent, but is unavailable for use by the managed device (see NOTE below); - 'notReady', which indicates that the conceptual row exists in the agent, but is missing information necessary in order to be available for use by the managed device; - 'createAndGo', which is supplied by a management station wishing to create a new instance of a conceptual row and to have its status automatically set to active, making it available for use by the managed device; - 'createAndWait', which is supplied by a management station wishing to create a new instance of a conceptual row (but not make it available for use by the managed device); and, - 'destroy', which is supplied by a management station wishing to delete all of the instances associated with an existing conceptual row. Whereas five of the six values (all except 'notReady') may be specified in a management protocol set operation, only three values will be returned in response to a management protocol retrieval operation: 'notReady', 'notInService' or 'active'. That is, when queried, an existing conceptual row has only three states: it is either available for use by the managed device (the status column has value 'active'); it is not available for use by the managed device, though the agent has sufficient information to make it so (the status column has value 'notInService'); or, it is not available for use by the managed device, and an attempt to make it so would fail because the agent has insufficient information (the state column has value 'notReady'). For a detailed description of this object, please refer to SNMPv2-TC MIB.rw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.17.7.1.1.23
aclMacAceTableThe conceptual table of all of aclMacAceEntry.
SEQUENCE OF AclMacAceEntry
.1.3.6.1.4.1.259.6.10.57.1.17.7.2
aclMacAceEntryThe conceptual row for aclMacAceTable.
AclMacAceEntry
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1
aclMacAceNameThe name of an ACL. Within a feature, a unique name is used to identify the list to which the entry belongs in the device.
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.1
aclMacAceIndexThe unique index of an ACE within an ACL.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.2
aclMacAcePrecedenceSpecifies the entry's precedence.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.3
aclMacAceActionIndicates the action to be taken if a packet matches this ACE. This object cannot be configured when the status of the entry, aclMacAceStatus, is active(1).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.4
aclMacAcePktformatUsed to check the packet format of the packets. This object cannot be configured when the status of the entry, aclMacAceStatus, is active(1).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.5
aclMacAceSourceMacAddrIndicates the 48-bit destination MAC address. The specified source MAC of the packet The packet's source MAC address is AND-ed with the value of aceMacSourceMacAddrBitmask and then compared against the value of this object. This object cannot be configured when the status of the entry, aclMacAceStatus, is active(1).rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.6
aclMacAceSourceMacAddrBitmaskThe specified source MAC address mask. This object cannot be configured when the status of the entry, aclMacAceStatus, is active(1).rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.7
aclMacAceDestMacAddrIndicates the 48-bit destination MAC address. The specified destination MAC of the packet. The packet's destination MAC address is AND-ed with the value of aceMacDestMacAddrBitmask and then compared against the value of this object. This object cannot be configured when the status of the entry, aclMacAceStatus, is active(1).rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.8
aclMacAceDestMacAddrBitmaskThe specified destination MAC address mask. This object cannot be configured when the status of the entry, aclMacAceStatus, is active(1).rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.9
aclMacAceVidOpIndicates how a packet's vid is to be compared. This object cannot be configured when the status of the entry, aclMacAceStatus, is active(1).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.10
aclMacAceMinVidIndicates the lower bound of the vid value range if the aclMacAceVidOp is range(3). This object cannot be configured when the status of the entry, aclMacAceStatus, is active(1).rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.11
aclMacAceVidBitmaskThe bitmask of vid if the aclMacAceVidOp is equal, default value is 0xfff.rw
Integer32 (0..'0FFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.12
aclMacAceMaxVidIndicates the upper bound of the vid value range if the aclMacAceVidOp is range(3). This object cannot be configured when the status of the entry, aclMacAceStatus, is active(1).rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.13
aclMacAceEtherTypeOpIndicates how a packet's ethertype is to be compared. This object cannot be configured when the status of the entry, aclMacAceStatus, is active(1).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.14
aclMacAceEtherTypeBitmaskThe bitmask of vid if the aclMacAceVidOp is equal(2) , default value is 0xFFFF.rw
Integer32 (0..'FFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.15
aclMacAceMinEtherTypeIndicates the lower bound of the vid value range if the aclMacAceEtherTypeOp is range(3). This object cannot be configured when the status of the entry, aclMacAceStatus, is active(1).rw
Integer32 ('0600'h..'FFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.16
aclMacAceMaxEtherTypeIndicates the upper bound of the vid value range if the aclMacAceEtherTypeOp is range(3). This object cannot be configured when the status of the entry, aclMacAceStatus, is active(1).rw
Integer32 ('0600'h..'FFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.17
aclMacAceStatusThe status of this conceptual row entry. This object isused to manage the creation and deletion of conceptual rows. The status column has six defined values: - 'active', which indicates that the conceptual row is available for use by the managed device; - 'notInService', which indicates that the conceptual row exists in the agent, but is unavailable for use by the managed device (see NOTE below); - 'notReady', which indicates that the conceptual row exists in the agent, but is missing information necessary in order to be available for use by the managed device; - 'createAndGo', which is supplied by a management station wishing to create a new instance of a conceptual row and to have its status automatically set to active, making it available for use by the managed device; - 'createAndWait', which is supplied by a management station wishing to create a new instance of a conceptual row (but not make it available for use by the managed device); and, - 'destroy', which is supplied by a management station wishing to delete all of the instances associated with an existing conceptual row. Whereas five of the six values (all except 'notReady') may be specified in a management protocol set operation, only three values will be returned in response to a management protocol retrieval operation: 'notReady', 'notInService' or 'active'. That is, when queried, an existing conceptual row has only three states: it is either available for use by the managed device (the status column has value 'active'); it is not available for use by the managed device, though the agent has sufficient information to make it so (the status column has value 'notInService'); or, it is not available for use by the managed device, and an attempt to make it so would fail because the agent has insufficient information (the state column has value 'notReady'). For a detailed description of this object, please refer to SNMPv2-TC MIB.rw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.17.7.2.1.18
aclAclGroupTableThe conceptual table of aclAclGroupEntry.
SEQUENCE OF AclAclGroupEntry
.1.3.6.1.4.1.259.6.10.57.1.17.7.3
aclAclGroupEntryThe conceptual row for aclAclGroupTable.
AclAclGroupEntry
.1.3.6.1.4.1.259.6.10.57.1.17.7.3.1
aclAclGroupIfIndexThe interface number specifying the ACL binding to.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.3.1.1
aclAclGroupIngressIpAclSpecifies the ingress IP ACL(standard or extended) binding to the interface.rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.7.3.1.2
aclAclGroupEgressIpAclSpecifies the egress IP ACL(standard or extended) binding to the interface.rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.7.3.1.3
aclAclGroupIngressMacAclSpecifies the ingress MAC ACL binding to the interface.rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.7.3.1.4
aclAclGroupEgressMacAclSpecifies the egress MAC ACL binding to the interface.rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.17.7.3.1.5
aclIngressIpMaskTableThe conceptual table of aclIngressIpMaskEntry.
SEQUENCE OF AclIngressIpMaskEntry
.1.3.6.1.4.1.259.6.10.57.1.17.7.4
aclIngressIpMaskEntryThe conceptual row for aclIngressIpMaskTable.
AclIngressIpMaskEntry
.1.3.6.1.4.1.259.6.10.57.1.17.7.4.1
aclIngressIpMaskIndexIndicates the bitmask of the source IP address. The relative bitmask must be created before the ACE binds to the interface. This object cannot be configured when the status of the entry, aclIngressIpMaskStatus, is active(1).
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.4.1.1
aclIngressIpMaskPrecedenceIndicates whether to check the IP precedence against the packets, The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclIngressIpMaskStatus, is active(1).ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.4.1.2
aclIngressIpMaskIsEnableTosIndicates whether to check the IP ToS facility against the packets, The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclIngressIpMaskStatus, is active(1).rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.17.7.4.1.3
aclIngressIpMaskIsEnableDscpIndicates whether to check the IP DSCP against the packets. The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclIngressIpMaskStatus, is active(1).rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.17.7.4.1.4
aclIngressIpMaskIsEnablePrecedenceIndicates whether to check the IP precednce against the packets. The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclIngressIpMaskStatus, is active(1).rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.17.7.4.1.5
aclIngressIpMaskIsEnableProtocolIndicates whether to check the IP protocol against the packets. The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclIngressIpMaskStatus, is active(1).rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.17.7.4.1.6
aclIngressIpMaskSourceIpAddrBitmaskIndicates the source IP bitmask to check against the packets, The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclIngressIpMaskStatus, is active(1).rw
Unsigned32 (0..'FFFFFFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.4.1.7
aclIngressIpMaskDestIpAddrBitmaskIndicates the destination IP bitmask to check against the packets, The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclIngressIpMaskStatus, is active(1).rw
Unsigned32 (0..'FFFFFFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.4.1.8
aclIngressIpMaskSourcePortBitmaskIndicates the source port bitmask to check against the TCP/UDP packets, The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclIngressIpMaskStatus, is active(1).rw
Integer32 (0..'FFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.4.1.9
aclIngressIpMaskDestPortBitmaskIndicates the destination port bitmask to check against the TCP/UDP packets, The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclIngressIpMaskStatus, is active(1).rw
Integer32 (0..'FFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.4.1.10
aclIngressIpMaskControlCodeBitmaskIndicates the control code bitmask to check against the TCP packets, The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclIngressIpMaskStatus, is active(1).rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.4.1.11
aclIngressIpMaskStatusThe status of this conceptual row entry. This object isused to manage the creation and deletion of conceptual rows. The status column has six defined values: - 'active', which indicates that the conceptual row is available for use by the managed device; - 'notInService', which indicates that the conceptual row exists in the agent, but is unavailable for use by the managed device (see NOTE below); - 'notReady', which indicates that the conceptual row exists in the agent, but is missing information necessary in order to be available for use by the managed device; - 'createAndGo', which is supplied by a management station wishing to create a new instance of a conceptual row and to have its status automatically set to active, making it available for use by the managed device; - 'createAndWait', which is supplied by a management station wishing to create a new instance of a conceptual row (but not make it available for use by the managed device); and, - 'destroy', which is supplied by a management station wishing to delete all of the instances associated with an existing conceptual row. Whereas five of the six values (all except 'notReady') may be specified in a management protocol set operation, only three values will be returned in response to a management protocol retrieval operation: 'notReady', 'notInService' or 'active'. That is, when queried, an existing conceptual row has only three states: it is either available for use by the managed device (the status column has value 'active'); it is not available for use by the managed device, though the agent has sufficient information to make it so (the status column has value 'notInService'); or, it is not available for use by the managed device, and an attempt to make it so would fail because the agent has insufficient information (the state column has value 'notReady'). For a detailed description of this object, please refer to SNMPv2-TC MIB.rw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.17.7.4.1.12
aclEgressIpMaskTableThe conceptual table of aclEgressIpMaskEntry.
SEQUENCE OF AclEgressIpMaskEntry
.1.3.6.1.4.1.259.6.10.57.1.17.7.5
aclEgressIpMaskEntryThe conceptual row for aclEgressIpMaskTable.
AclEgressIpMaskEntry
.1.3.6.1.4.1.259.6.10.57.1.17.7.5.1
aclEgressIpMaskIndexThe index of a mask entry within a mask table.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.5.1.1
aclEgressIpMaskPrecedenceThe created precedence of an mask entry within the mask table.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.5.1.2
aclEgressIpMaskIsEnableTosIndicates whether to check the IP ToS facility against the packets. The relative bitmask must be created before the ACE binds to the interface in egress direction. This object cannot be configured when the status of the entry, aclEgressIpMaskStatus, is active(1).rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.17.7.5.1.3
aclEgressIpMaskIsEnableDscpIndicates whether to check the IP DSCP against the packets. The relative bitmask must be created before the ACE binds to the interface in egress direction. This object cannot be configured when the status of the entry, aclEgressIpMaskStatus, is active(1).rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.17.7.5.1.4
aclEgressIpMaskIsEnablePrecedenceIndicates whether to check the IP precedence against the packets. The relative bitmask must be created before the ACE binds to the interface in egress direction. This object cannot be configured when the status of the entry, aclEgressIpMaskStatus, is active(1).rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.17.7.5.1.5
aclEgressIpMaskIsEnableProtocolIndicates whether to check the IP protocol against the packets. The relative bitmask must be created before the ACE binds to the interface in egress direction. This object cannot be configured when the status of the entry, aclEgressIpMaskStatus, is active(1).rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.17.7.5.1.6
aclEgressIpMaskSourceIpAddrBitmaskIndicates the source IP bitmask to check against the packets. The relative bitmask must be created before the ACE binds to the interface in egress direction. This object cannot be configured when the status of the entry, aclEgressIpMaskStatus, is active(1).rw
Unsigned32 (0..'FFFFFFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.5.1.7
aclEgressIpMaskDestIpAddrBitmaskIndicates the destination IP bitmask to check against the packets. The relative bitmask must be created before the ACE binds to the interface in egress direction. This object cannot be configured when the status of the entry, aclEgressIpMaskStatus, is active(1).rw
Unsigned32 (0..'FFFFFFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.5.1.8
aclEgressIpMaskSourcePortBitmaskIndicates the source port bitmask to check against the TCP/UDP packets. The relative bitmask must be created before the ACE binds to the interface in egress direction. This object cannot be configured when the status of the entry, aclEgressIpMaskStatus, is active(1).rw
Integer32 (0..'FFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.5.1.9
aclEgressIpMaskDestPortBitmaskIndicates the destination port bitmask to check against the TCP/UDP packets. The relative bitmask must be created before the ACE binds to the interface in egress direction. This object cannot be configured when the status of the entry, aclEgressIpMaskStatus, is active(1).rw
Integer32 (0..'FFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.5.1.10
aclEgressIpMaskControlCodeBitmaskIndicates the control code bitmask to check against the TCP packets. The relative bitmask must be created before the ACE binds to the interface in egress direction. This object cannot be configured when the status of the entry, aclEgressIpMaskStatus, is active(1).rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.5.1.11
aclEgressIpMaskStatusThe status of this conceptual row entry. This object isused to manage the creation and deletion of conceptual rows. The status column has six defined values: - 'active', which indicates that the conceptual row is available for use by the managed device; - 'notInService', which indicates that the conceptual row exists in the agent, but is unavailable for use by the managed device (see NOTE below); - 'notReady', which indicates that the conceptual row exists in the agent, but is missing information necessary in order to be available for use by the managed device; - 'createAndGo', which is supplied by a management station wishing to create a new instance of a conceptual row and to have its status automatically set to active, making it available for use by the managed device; - 'createAndWait', which is supplied by a management station wishing to create a new instance of a conceptual row (but not make it available for use by the managed device); and, - 'destroy', which is supplied by a management station wishing to delete all of the instances associated with an existing conceptual row. Whereas five of the six values (all except 'notReady') may be specified in a management protocol set operation, only three values will be returned in response to a management protocol retrieval operation: 'notReady', 'notInService' or 'active'. That is, when queried, an existing conceptual row has only three states: it is either available for use by the managed device (the status column has value 'active'); it is not available for use by the managed device, though the agent has sufficient information to make it so (the status column has value 'notInService'); or, it is not available for use by the managed device, and an attempt to make it so would fail because the agent has insufficient information (the state column has value 'notReady'). For a detailed description of this object, please refer to SNMPv2-TC MIB.rw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.17.7.5.1.12
aclIngressMacMaskTableThe conceptual table of aclIngressMacMaskEntry.
SEQUENCE OF AclIngressMacMaskEntry
.1.3.6.1.4.1.259.6.10.57.1.17.7.6
aclIngressMacMaskEntryThe conceptual row for aclIngressMacMaskTable.
AclIngressMacMaskEntry
.1.3.6.1.4.1.259.6.10.57.1.17.7.6.1
aclIngressMacMaskIndexThe index of an mask entry within an ingress mask table.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.6.1.1
aclIngressMacMaskPrecedenceThe created order of an mask entry within an ingress mask table.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.6.1.2
aclIngressMacMaskSourceMacAddrBitmaskIndicates the source MAC bitmask to check against the packets. The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclIngressMacMaskStatus, is active(1).rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.17.7.6.1.3
aclIngressMacMaskDestMacAddrBitmaskIndicates the destination MAC bitmask to check against the packets. The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclIngressMacMaskStatus, is active(1).rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.17.7.6.1.4
aclIngressMacMaskVidBitmaskIndicates the vid bitmask to check against the packets, The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclIngressMacMaskStatus, is active(1).rw
Integer32 (0..'0FFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.6.1.5
aclIngressMacMaskEtherTypeBitmaskIndicates the ethertype bitmask to check against the packets. The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclIngressMacMaskStatus, is active(1).rw
Integer32 (0..'FFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.6.1.6
aclIngressMacMaskIsEnablePktformatIndicates whether to check the packet format against the packets. The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclIngressMacMaskStatus, is active(1).rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.17.7.6.1.7
aclIngressMacMaskStatusThe status of this conceptual row entry. This object isused to manage the creation and deletion of conceptual rows. The status column has six defined values: - 'active', which indicates that the conceptual row is available for use by the managed device; - 'notInService', which indicates that the conceptual row exists in the agent, but is unavailable for use by the managed device (see NOTE below); - 'notReady', which indicates that the conceptual row exists in the agent, but is missing information necessary in order to be available for use by the managed device; - 'createAndGo', which is supplied by a management station wishing to create a new instance of a conceptual row and to have its status automatically set to active, making it available for use by the managed device; - 'createAndWait', which is supplied by a management station wishing to create a new instance of a conceptual row (but not make it available for use by the managed device); and, - 'destroy', which is supplied by a management station wishing to delete all of the instances associated with an existing conceptual row. Whereas five of the six values (all except 'notReady') may be specified in a management protocol set operation, only three values will be returned in response to a management protocol retrieval operation: 'notReady', 'notInService' or 'active'. That is, when queried, an existing conceptual row has only three states: it is either available for use by the managed device (the status column has value 'active'); it is not available for use by the managed device, though the agent has sufficient information to make it so (the status column has value 'notInService'); or, it is not available for use by the managed device, and an attempt to make it so would fail because the agent has insufficient information (the state column has value 'notReady'). For a detailed description of this object, please refer to SNMPv2-TC MIB.rw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.17.7.6.1.8
aclEgressMacMaskTableThe conceptual table of aclEgressMacMaskEntry.
SEQUENCE OF AclEgressMacMaskEntry
.1.3.6.1.4.1.259.6.10.57.1.17.7.7
aclEgressMacMaskEntryThe conceptual row for aclEgressMacMaskTable.
AclEgressMacMaskEntry
.1.3.6.1.4.1.259.6.10.57.1.17.7.7.1
aclEgressMacMaskIndexThe index of a mask entry within an egress mask table.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.7.1.1
aclEgressMacMaskPrecedenceThe created precedence of a mask entry within an egress mask table.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.17.7.7.1.2
aclEgressMacMaskSourceMacAddrBitmaskIndicates the source MAC bitmask to check against the packets, The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclEgressMacMaskStatus, is active(1).rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.17.7.7.1.3
aclEgressMacMaskDestMacAddrBitmaskIndicates the destination MAC bitmask to check against the packets, The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclEgressMacMaskStatus, is active(1).rw
OCTET STRING
.1.3.6.1.4.1.259.6.10.57.1.17.7.7.1.4
aclEgressMacMaskVidBitmaskIndicates the vid bitmask to check against the packets. The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclEgressMacMaskStatus, is active(1).rw
Integer32 (0..'0FFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.7.1.5
aclEgressMacMaskEtherTypeBitmaskIndicates the ethertype bitmask to check against the packets. The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclEgressMacMaskStatus, is active(1).rw
Integer32 (0..'FFFF'h)
.1.3.6.1.4.1.259.6.10.57.1.17.7.7.1.6
aclEgressMacMaskIsEnablePktformatIndicates whether to check the packet format against the packets. The relative bitmask must be created before the ACE binds to the interface in ingress direction. This object cannot be configured when the status of the entry, aclEgressMacMaskStatus, is active(1).rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.17.7.7.1.7
aclEgressMacMaskStatusThe status of this conceptual row entry. This object isused to manage the creation and deletion of conceptual rows. The status column has six defined values: - 'active', which indicates that the conceptual row is available for use by the managed device; - 'notInService', which indicates that the conceptual row exists in the agent, but is unavailable for use by the managed device (see NOTE below); - 'notReady', which indicates that the conceptual row exists in the agent, but is missing information necessary in order to be available for use by the managed device; - 'createAndGo', which is supplied by a management station wishing to create a new instance of a conceptual row and to have its status automatically set to active, making it available for use by the managed device; - 'createAndWait', which is supplied by a management station wishing to create a new instance of a conceptual row (but not make it available for use by the managed device); and, - 'destroy', which is supplied by a management station wishing to delete all of the instances associated with an existing conceptual row. Whereas five of the six values (all except 'notReady') may be specified in a management protocol set operation, only three values will be returned in response to a management protocol retrieval operation: 'notReady', 'notInService' or 'active'. That is, when queried, an existing conceptual row has only three states: it is either available for use by the managed device (the status column has value 'active'); it is not available for use by the managed device, though the agent has sufficient information to make it so (the status column has value 'notInService'); or, it is not available for use by the managed device, and an attempt to make it so would fail because the agent has insufficient information (the state column has value 'notReady'). For a detailed description of this object, please refer to SNMPv2-TC MIB.rw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.17.7.7.1.8
ipFilterMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.17.9
ipFilterSnmpTableA list of IP address entries.
SEQUENCE OF IpFilterSnmpEntry
.1.3.6.1.4.1.259.6.10.57.1.17.9.1
ipFilterSnmpEntryThis entry includes an IP address range which the system will allow them to connect to this device through SNMP.
IpFilterSnmpEntry
.1.3.6.1.4.1.259.6.10.57.1.17.9.1.1
ipFilterSnmpStartAddressThe start-ip-address.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.17.9.1.1.1
ipFilterSnmpEndAddressThe end-ip-address.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.17.9.1.1.2
ipFilterSnmpStatusSetting this to valid(1) creates an entry. Setting this to invalid(2) destroys an entry.rw
ValidStatus
.1.3.6.1.4.1.259.6.10.57.1.17.9.1.1.3
ipFilterHTTPTableA list of IP address entries.
SEQUENCE OF IpFilterHTTPEntry
.1.3.6.1.4.1.259.6.10.57.1.17.9.2
ipFilterHTTPEntryThis entry includes an IP address range which the system will allow them to connect to this device through SNMP.
IpFilterHTTPEntry
.1.3.6.1.4.1.259.6.10.57.1.17.9.2.1
ipFilterHTTPStartAddressThe start-ip-address.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.17.9.2.1.1
ipFilterHTTPEndAddressThe end-ip-address.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.17.9.2.1.2
ipFilterHTTPStatusSetting this to valid(1) creates an entry. Setting this to invalid(2) destroys an entry.rw
ValidStatus
.1.3.6.1.4.1.259.6.10.57.1.17.9.2.1.3
ipFilterTelnetTableA list of IP address entries.
SEQUENCE OF IpFilterTelnetEntry
.1.3.6.1.4.1.259.6.10.57.1.17.9.3
ipFilterTelnetEntryThis entry includes an IP address range which the system will allow them to connect to this device through SNMP.
IpFilterTelnetEntry
.1.3.6.1.4.1.259.6.10.57.1.17.9.3.1
ipFilterTelnetStartAddressThe start-ip-address.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.17.9.3.1.1
ipFilterTelnetEndAddressThe end-ip-address.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.17.9.3.1.2
ipFilterTelnetStatusSetting this to valid(1) creates an entry. Setting this to invalid(2) destroys an entry.rw
ValidStatus
.1.3.6.1.4.1.259.6.10.57.1.17.9.3.1.3
layer3Mgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.18
arpMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.18.1
arpCacheDeleteAllTo delete all dynamic entries in the ARP cache, write this variable to delete(1). Writing this variable to noDelete(2) has no effect on the device. When read, this variable always returns noDelete(2).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.18.1.1
arpCacheTimeoutThe timeout is provided for entries in the ARP Cache. It's for dynamic mapping only. Static mapping by creating a entry that associates a logical address with a physical address is never age out.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.1.2
arpTrafficStatistics
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.18.1.3
arpStatSendRequestPacketsThe number of ARP Request packets sent by the ARP process.ro
Counter32
.1.3.6.1.4.1.259.6.10.57.1.18.1.3.1
arpStatRcvRequestPacketsThe number of ARP Request packets received by the ARP process.ro
Counter32
.1.3.6.1.4.1.259.6.10.57.1.18.1.3.2
arpStatSendReplyPacketsThe number of ARP Reply packets sent by the ARP process.ro
Counter32
.1.3.6.1.4.1.259.6.10.57.1.18.1.3.3
arpStatRcvReplyPacketsThe number of ARP Reply packets received by the ARP process.ro
Counter32
.1.3.6.1.4.1.259.6.10.57.1.18.1.3.4
arpProxyArpTableA list of Proxy ARP status. This table has entries for all static VLANs.
SEQUENCE OF ArpProxyArpEntry
.1.3.6.1.4.1.259.6.10.57.1.18.1.4
arpProxyArpEntryAn entry in the table, containing information about Proxy ARP configuration.
ArpProxyArpEntry
.1.3.6.1.4.1.259.6.10.57.1.18.1.4.1
arpProxyArpIfIndexThis is defined as a VLAN interface. A routing interface is a VLAN binds a IP subnet.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.1.4.1.1
arpProxyArpStatusEnable or Disable Proxy ARP process on an interfacerw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.18.1.4.1.2
ripMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.18.2
ripTimers
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.18.2.1
ripUpdateTimeThe update time in seconds controls the advertising of regular update messages. The real working model, while using this timer, the time should be offset by a small random time (+/- 0 to 5 seconds each time it is set.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.2.1.1
ripTimeoutTimeThe timeout timer in seconds governs the validity of a route. It is initialized when a route is established, and any time an update message is received for the route. If the setting time elapses from the last time the timrout was initialized, the route is considered to have expired, and the hop count of the route is set to infinite. It should be at least three times the value of update timer.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.2.1.2
ripGarbageCollectionTimeWhen the information about a route becomes invalid, the system should not immediately purge that route from its table. Instead, it continues to advertise the route with a metric of infinite. At the same time, the garbage-collection timer is set for that route. When the count reaches zero, the route is purged from the the table. This timer allows neighbors to become aware of the invalidity of a route prior to purging.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.2.1.3
ripRoutingProcessStatusEnable or Disable RIP routing process on a system.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.18.2.2
ripRouterVersionTo specify a RIP version used globally by the rourter.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.18.2.3
ripInstabilityPreventingTableA list of RIP instability preventing status
SEQUENCE OF RipInstabilityPreventingEntry
.1.3.6.1.4.1.259.6.10.57.1.18.2.4
ripInstabilityPreventingEntryAn entry in the table, containing information about RIP instability preventing configuration. The ifIndex index is a VLAN's ifIndex
RipInstabilityPreventingEntry
.1.3.6.1.4.1.259.6.10.57.1.18.2.4.1
ripVlanIndexThis is defined as a VLAN interface. A routing interface is a VLAN binds a IP subnet.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.2.4.1.1
ripSplitHorizonStatusEnable or Disable RIP Poison Reverse on an interfacerw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.18.2.4.1.2
ripStatisticsResetWrite it to reset(1), the following objects in RFC 1724 should be reset: 1. Global Counters: 'rip2GlobalRouteChanges', 'rip2GlobalQueries'. 2. Interface Status Table, for each 'rip2IfStatAddress': 'rip2IfStatRcvBadPackets', 'rip2IfStatRcvBadRoutes', 'rip2IfStatSendUpdates' 3. Peer Table, for each 'rip2PeerAddress' and 'rip2PeerDomain', 'rip2PeerRcvBadPackets', 'rip2PeerRcvBadRoutes' When read it, this value always is noReset(2).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.18.2.5
ripNetworkAddrTable
SEQUENCE OF RipNetworkAddrEntry
.1.3.6.1.4.1.259.6.10.57.1.18.2.6
ripNetworkAddrEntry
RipNetworkAddrEntry
.1.3.6.1.4.1.259.6.10.57.1.18.2.6.1
ripNetworkAddrAddressThe RIP Network address.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.2.6.1.1
ripNetworkAddrStatusSet this variable to create or destroy a RIP network address.rw
ValidStatus
.1.3.6.1.4.1.259.6.10.57.1.18.2.6.1.2
ospfMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.18.3
ospfSystemGroup
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.18.3.1
ospfRouterIdTypeSet router ID automatically or manually.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.18.3.1.1
ospfRfc1583CompatibleStateEnable or disable rfc1583 compatibility.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.18.3.1.2
ospfAutoCostSet the reference bandwith of auto cost, the unit is Mbps.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.3.1.3
ospfOriginateDefaultRouteEnable or disable ASBR to generate a default external route into an OSPF domain if the default route already exists.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.18.3.1.4
ospfAdvertiseDefaultRouteIf enabled, always advertises the default route regardless of whether the default route exists.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.18.3.1.5
ospfExternalMetricTypeExternal link type associated with the default route advertised into the OSPF routing domain.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.18.3.1.6
ospfDefaultExternalMetricMetric used for generating the default route.rw
OspfBigMetric
.1.3.6.1.4.1.259.6.10.57.1.18.3.1.7
ospfSpfHoldTimeSets the hold time between two consecutive SPF calculations.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.3.1.8
ospfSpfDelayTimeSets the delay time to calculate SPF Delay time, in seconds, between when OSPF receives a topology change and when it starts an SPF calculation.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.3.1.9
ospfAreaNumberRecords the OSPF area numbers.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.3.1.10
ospfNssaTableA conceptually table for ospfNssaEntry.
SEQUENCE OF OspfNssaEntry
.1.3.6.1.4.1.259.6.10.57.1.18.3.2
ospfNssaEntryA conceptually row for ospfNssaTable.
OspfNssaEntry
.1.3.6.1.4.1.259.6.10.57.1.18.3.2.1
ospfNssaAreaIdThe 32-bit identifier for the NSSA. On creation, this can be derived from the instance.
OspfAreaID
.1.3.6.1.4.1.259.6.10.57.1.18.3.2.1.1
ospfNssaRedistributeStatusEnabled or disabled to import routes only into the normal areas, but not into the NSSA area.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.18.3.2.1.2
ospfNssaOriginateDefaultInfoStatusEnable or disable to generate a Type 7 default into the NSSA area.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.18.3.2.1.3
ospfNssaStatusThe status of this conceptual row entry. This object is used to manage the creation and deletion of conceptual rows. The status column has six defined values: - 'active', which indicates that the conceptual row is available for use by the managed device; - 'notInService', which indicates that the conceptual row exists in the agent, but is unavailable for use by the managed device (see NOTE below); - 'notReady', which indicates that the conceptual row exists in the agent, but is missing information necessary in order to be available for use by the managed device; - 'createAndGo', which is supplied by a management station wishing to create a new instance of a conceptual row and to have its status automatically set to active, making it available for use by the managed device; - 'createAndWait', which is supplied by a management station wishing to create a new instance of a conceptual row (but not make it available for use by the managed device); and, - 'destroy', which is supplied by a management station wishing to delete all of the instances associated with an existing conceptual row. Whereas five of the six values (all except 'notReady') may be specified in a management protocol set operation, only three values will be returned in response to a management protocol retrieval operation: 'notReady', 'notInService' or 'active'. That is, when queried, an existing conceptual row has only three states: it is either available for use by the managed device (the status column has value 'active'); it is not available for use by the managed device, though the agent has sufficient information to make it so (the status column has value 'notInService'); or, it is not available for use by the managed device, and an attempt to make it so would fail because the agent has insufficient information (the state column has value 'notReady'). For a detailed description of this object, please refer to SNMPv2-TC MIB.rw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.18.3.2.1.4
ospfRedistributeTableThe conceptual table of all of ospfRedistributeEntry.
SEQUENCE OF OspfRedistributeEntry
.1.3.6.1.4.1.259.6.10.57.1.18.3.3
ospfRedistributeEntryThe conceptual row for ospfRedistributeTable.
OspfRedistributeEntry
.1.3.6.1.4.1.259.6.10.57.1.18.3.3.1
ospfRedistributeProtocolProtocol ID. Static is not supported now.
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.18.3.3.1.1
ospfRedistributeMetricTypeMetric type.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.18.3.3.1.2
ospfRedistributeMetricMetric value.rw
OspfBigMetric
.1.3.6.1.4.1.259.6.10.57.1.18.3.3.1.3
ospfRedistributeStatusThe status of this conceptual row entry. This object isused to manage the creation and deletion of conceptual rows. The status column has six defined values: - 'active', which indicates that the conceptual row is available for use by the managed device; - 'notInService', which indicates that the conceptual row exists in the agent, but is unavailable for use by the managed device (see NOTE below); - 'notReady', which indicates that the conceptual row exists in the agent, but is missing information necessary in order to be available for use by the managed device; - 'createAndGo', which is supplied by a management station wishing to create a new instance of a conceptual row and to have its status automatically set to active, making it available for use by the managed device; - 'createAndWait', which is supplied by a management station wishing to create a new instance of a conceptual row (but not make it available for use by the managed device); and, - 'destroy', which is supplied by a management station wishing to delete all of the instances associated with an existing conceptual row. Whereas five of the six values (all except 'notReady') may be specified in a management protocol set operation, only three values will be returned in response to a management protocol retrieval operation: 'notReady', 'notInService' or 'active'. That is, when queried, an existing conceptual row has only three states: it is either available for use by the managed device (the status column has value 'active'); it is not available for use by the managed device, though the agent has sufficient information to make it so (the status column has value 'notInService'); or, it is not available for use by the managed device, and an attempt to make it so would fail because the agent has insufficient information (the state column has value 'notReady'). For a detailed description of this object, please refer to SNMPv2-TC MIB.rw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.18.3.3.1.4
ospfSummaryAddressTableThe conceptual table of all of ospfSummaryAddressEntry.
SEQUENCE OF OspfSummaryAddressEntry
.1.3.6.1.4.1.259.6.10.57.1.18.3.4
ospfSummaryAddressEntryThe conceptual row for ospfSummaryAddressTable.
OspfSummaryAddressEntry
.1.3.6.1.4.1.259.6.10.57.1.18.3.4.1
ospfSummaryAddressSummary address.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.3.4.1.1
ospfSummaryMaskSummary mask.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.3.4.1.2
ospfSummaryStatusThe status of this conceptual row entry. This object isused to manage the creation and deletion of conceptual rows. The status column has six defined values: - 'active', which indicates that the conceptual row is available for use by the managed device; - 'notInService', which indicates that the conceptual row exists in the agent, but is unavailable for use by the managed device (see NOTE below); - 'notReady', which indicates that the conceptual row exists in the agent, but is missing information necessary in order to be available for use by the managed device; - 'createAndGo', which is supplied by a management station wishing to create a new instance of a conceptual row and to have its status automatically set to active, making it available for use by the managed device; - 'createAndWait', which is supplied by a management station wishing to create a new instance of a conceptual row (but not make it available for use by the managed device); and, - 'destroy', which is supplied by a management station wishing to delete all of the instances associated with an existing conceptual row. Whereas five of the six values (all except 'notReady') may be specified in a management protocol set operation, only three values will be returned in response to a management protocol retrieval operation: 'notReady', 'notInService' or 'active'. That is, when queried, an existing conceptual row has only three states: it is either available for use by the managed device (the status column has value 'active'); it is not available for use by the managed device, though the agent has sufficient information to make it so (the status column has value 'notInService'); or, it is not available for use by the managed device, and an attempt to make it so would fail because the agent has insufficient information (the state column has value 'notReady'). For a detailed description of this object, please refer to SNMPv2-TC MIB.rw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.18.3.4.1.3
ospfNetworkAreaAddressTableThe conceptual table of all of ospfNetworkAreaAddressEntry.
SEQUENCE OF OspfNetworkAreaAddressEntry
.1.3.6.1.4.1.259.6.10.57.1.18.3.5
ospfNetworkAreaAddressEntryThe conceptual row for ospfNetworkAreaAddressTable.
OspfNetworkAreaAddressEntry
.1.3.6.1.4.1.259.6.10.57.1.18.3.5.1
ospfNetworkAareaAddressNetworkArea address.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.3.5.1.1
ospfNetworkAreaMaskNetworkArea mask.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.3.5.1.2
ospfNetworkAreaAreaIdNetworkArea area ID.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.3.5.1.3
ospfNetworkAreaStatusThe status of this conceptual row entry. This object isused to manage the creation and deletion of conceptual rows. The status column has six defined values: - 'active', which indicates that the conceptual row is available for use by the managed device; - 'notInService', which indicates that the conceptual row exists in the agent, but is unavailable for use by the managed device (see NOTE below); - 'notReady', which indicates that the conceptual row exists in the agent, but is missing information necessary in order to be available for use by the managed device; - 'createAndGo', which is supplied by a management station wishing to create a new instance of a conceptual row and to have its status automatically set to active, making it available for use by the managed device; - 'createAndWait', which is supplied by a management station wishing to create a new instance of a conceptual row (but not make it available for use by the managed device); and, - 'destroy', which is supplied by a management station wishing to delete all of the instances associated with an existing conceptual row. Whereas five of the six values (all except 'notReady') may be specified in a management protocol set operation, only three values will be returned in response to a management protocol retrieval operation: 'notReady', 'notInService' or 'active'. That is, when queried, an existing conceptual row has only three states: it is either available for use by the managed device (the status column has value 'active'); it is not available for use by the managed device, though the agent has sufficient information to make it so (the status column has value 'notInService'); or, it is not available for use by the managed device, and an attempt to make it so would fail because the agent has insufficient information (the state column has value 'notReady'). For a detailed description of this object, please refer to SNMPv2-TC MIB.rw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.18.3.5.1.4
dvmrpMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.18.4
dvmrpScalar
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.18.4.1
dvmrpVersionStringThe router's DVMRP version information. Similar to sysDescr in MIB-II, this is a free-form field which can be used to display vendor-specific information.ro
DisplayString (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.18.4.1.1
dvmrpNumRoutesThe number of entries in the routing table. This can be used to monitor the routing table size.ro
Gauge32
.1.3.6.1.4.1.259.6.10.57.1.18.4.1.3
dvmrpReachableRoutesThe number of entries in the routing table with non infinite metrics. This can be used to detect network partitions by observing the ratio of reachable routes to total routes.ro
Gauge32
.1.3.6.1.4.1.259.6.10.57.1.18.4.1.4
dvmrpInterfaceTableThe (conceptual) table listing the router's multicast- capable interfaces.
SEQUENCE OF DvmrpInterfaceEntry
.1.3.6.1.4.1.259.6.10.57.1.18.4.2
dvmrpInterfaceEntryAn entry (conceptual row) in the dvmrpInterfaceTable. This row augments ipMRouteInterfaceEntry in the IP Multicast MIB, where the threshold object resides.
DvmrpInterfaceEntry
.1.3.6.1.4.1.259.6.10.57.1.18.4.2.1
dvmrpInterfaceIndexThe ifIndex value of the interface for which DVMRP is enabled.
InterfaceIndex (IF-MIB)
.1.3.6.1.4.1.259.6.10.57.1.18.4.2.1.1
dvmrpInterfaceLocalAddressThe IP address this system will use as a source address on this interface. On unnumbered interfaces, it must be the same value as dvmrpInterfaceLocalAddress for some interface on the system.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.4.2.1.2
dvmrpInterfaceMetricThe distance metric for this interface which is used to calculate distance vectors.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.4.2.1.3
dvmrpInterfaceStatusThe status of this entry. Creating the entry enables DVMRP on the virtual interface; destroying the entry or setting it to notInService disables DVMRP on the virtual interface.rw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.18.4.2.1.4
dvmrpInterfaceRcvBadPktsThe number of DVMRP messages received on the interface by the DVMRP process which were subsequently discarded as invalid (e.g. invalid packet format, or a route report from an unknown neighbor).ro
Counter32
.1.3.6.1.4.1.259.6.10.57.1.18.4.2.1.5
dvmrpInterfaceRcvBadRoutesThe number of routes, in valid DVMRP packets, which were ignored because the entry was invalid.ro
Counter32
.1.3.6.1.4.1.259.6.10.57.1.18.4.2.1.6
dvmrpInterfaceSentRoutesThe number of routes, in DVMRP Report packets, which have been sent on this interface. Together with dvmrpNeighborRcvRoutes at a peer, this object is useful for detecting routes being lost.ro
Counter32
.1.3.6.1.4.1.259.6.10.57.1.18.4.2.1.7
dvmrpInterfaceKeyThe (shared) key for authenticating neighbors on this interface. This object is intended solely for the purpose of setting the interface key, and MUST be accessible only via requests using both authentication and privacy. The agent MAY report an empty string in response to get, get- next, get-bulk requests.rw
SnmpAdminString (SNMP-FRAMEWORK-MIB)
.1.3.6.1.4.1.259.6.10.57.1.18.4.2.1.8
dvmrpInterfaceKeyVersionThe highest version number of all known interface keys for this interface used for authenticating neighbors.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.4.2.1.9
dvmrpInterfaceGenerationIdThe generation identifier for the interface. This is used by neighboring routers to detect whether the DVMRP routing table should be resent.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.4.2.1.10
dvmrpNeighborTableThe (conceptual) table listing the router's DVMRP neighbors, as discovered by receiving DVMRP messages.
SEQUENCE OF DvmrpNeighborEntry
.1.3.6.1.4.1.259.6.10.57.1.18.4.3
dvmrpNeighborEntryAn entry (conceptual row) in the dvmrpNeighborTable.
DvmrpNeighborEntry
.1.3.6.1.4.1.259.6.10.57.1.18.4.3.1
dvmrpNeighborIfIndexThe value of ifIndex for the virtual interface used to reach this DVMRP neighbor.
InterfaceIndex (IF-MIB)
.1.3.6.1.4.1.259.6.10.57.1.18.4.3.1.1
dvmrpNeighborAddressThe IP address of the DVMRP neighbor for which this entry contains information.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.4.3.1.2
dvmrpNeighborUpTimeThe time since this DVMRP neighbor (last) became a neighbor of the local router.ro
TimeTicks (SNMPv2-SMI)
.1.3.6.1.4.1.259.6.10.57.1.18.4.3.1.3
dvmrpNeighborExpiryTimeThe minimum time remaining before this DVMRP neighbor will be aged out.ro
TimeTicks (SNMPv2-SMI)
.1.3.6.1.4.1.259.6.10.57.1.18.4.3.1.4
dvmrpNeighborGenerationIdThe neighboring router's generation identifier.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.4.3.1.5
dvmrpNeighborMajorVersionThe neighboring router's major DVMRP version number.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.4.3.1.6
dvmrpNeighborMinorVersionThe neighboring router's minor DVMRP version number.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.4.3.1.7
dvmrpNeighborCapabilitiesThis object describes the neighboring router's capabilities. The leaf bit indicates that the neighbor has only one interface with neighbors. The prune bit indicates that the neighbor supports pruning. The generationID bit indicates that the neighbor sends its generationID in Probe messages. The mtrace bit indicates that the neighbor can handle mtrace requests.ro
Bits
.1.3.6.1.4.1.259.6.10.57.1.18.4.3.1.8
dvmrpNeighborRcvRoutesThe total number of routes received in valid DVMRP packets received from this neighbor. This can be used to diagnose problems such as unicast route injection, as well as giving an indication of the level of DVMRP route exchange activity.ro
Counter32
.1.3.6.1.4.1.259.6.10.57.1.18.4.3.1.9
dvmrpNeighborRcvBadPktsThe number of packet received from this neighbor which were discarded as invalid.ro
Counter32
.1.3.6.1.4.1.259.6.10.57.1.18.4.3.1.10
dvmrpNeighborRcvBadRoutesThe number of routes, in valid DVMRP packets received from this neighbor, which were ignored because the entry was invalid.ro
Counter32
.1.3.6.1.4.1.259.6.10.57.1.18.4.3.1.11
dvmrpNeighborStateState of the neighbor adjacency.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.18.4.3.1.12
dvmrpRouteTableThe table of routes learned through DVMRP route exchange.
SEQUENCE OF DvmrpRouteEntry
.1.3.6.1.4.1.259.6.10.57.1.18.4.4
dvmrpRouteEntryAn entry (conceptual row) containing the multicast routing information used by DVMRP in place of the unicast routing information.
DvmrpRouteEntry
.1.3.6.1.4.1.259.6.10.57.1.18.4.4.1
dvmrpRouteSourceThe network address which when combined with the corresponding value of dvmrpRouteSourceMask identifies the sources for which this entry contains multicast routing information.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.4.4.1.1
dvmrpRouteSourceMaskThe network mask which when combined with the corresponding value of dvmrpRouteSource identifies the sources for which this entry contains multicast routing information.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.4.4.1.2
dvmrpRouteUpstreamNeighborThe address of the upstream neighbor (e.g., RPF neighbor) from which IP datagrams from these sources are received.ro
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.4.4.1.3
dvmrpRouteIfIndexThe value of ifIndex for the interface on which IP datagrams sent by these sources are received. A value of 0 typically means the route is an aggregate for which no next- hop interface exists.ro
InterfaceIndexOrZero (IF-MIB)
.1.3.6.1.4.1.259.6.10.57.1.18.4.4.1.4
dvmrpRouteMetricThe distance in hops to the source subnet.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.4.4.1.5
dvmrpRouteExpiryTimeThe minimum amount of time remaining before this entry will be aged out.ro
TimeTicks (SNMPv2-SMI)
.1.3.6.1.4.1.259.6.10.57.1.18.4.4.1.6
dvmrpRouteUpTimeThe time since the route represented by this entry was learned by the router.ro
TimeTicks (SNMPv2-SMI)
.1.3.6.1.4.1.259.6.10.57.1.18.4.4.1.7
dvmrpRouteNextHopTableThe (conceptual) table containing information on the next hops on outgoing interfaces for routing IP multicast datagrams.
SEQUENCE OF DvmrpRouteNextHopEntry
.1.3.6.1.4.1.259.6.10.57.1.18.4.5
dvmrpRouteNextHopEntryAn entry (conceptual row) in the list of next hops on outgoing interfaces to which IP multicast datagrams from particular sources are routed.
DvmrpRouteNextHopEntry
.1.3.6.1.4.1.259.6.10.57.1.18.4.5.1
dvmrpRouteNextHopSourceThe network address which when combined with the corresponding value of dvmrpRouteNextHopSourceMask identifies the sources for which this entry specifies a next hop on an outgoing interface.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.4.5.1.1
dvmrpRouteNextHopSourceMaskThe network mask which when combined with the corresponding value of dvmrpRouteNextHopSource identifies the sources for which this entry specifies a next hop on an outgoing interface.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.4.5.1.2
dvmrpRouteNextHopIfIndexThe ifIndex value of the interface for the outgoing interface for this next hop.
InterfaceIndex (IF-MIB)
.1.3.6.1.4.1.259.6.10.57.1.18.4.5.1.3
dvmrpRouteNextHopTypeType is leaf if no downstream dependent neighbors exist on the outgoing virtual interface. Otherwise, type is branch.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.18.4.5.1.4
dvmrpPruneTableThe (conceptual) table listing the router's upstream prune state.
SEQUENCE OF DvmrpPruneEntry
.1.3.6.1.4.1.259.6.10.57.1.18.4.6
dvmrpPruneEntryAn entry (conceptual row) in the dvmrpPruneTable.
DvmrpPruneEntry
.1.3.6.1.4.1.259.6.10.57.1.18.4.6.1
dvmrpPruneGroupThe group address which has been pruned.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.4.6.1.1
dvmrpPruneSourceThe address of the source or source network which has been pruned.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.4.6.1.2
dvmrpPruneSourceMaskThe address of the source or source network which has been pruned. The mask must either be all 1's, or else dvmrpPruneSource and dvmrpPruneSourceMask must match dvmrpRouteSource and dvmrpRouteSourceMask for some entry in the dvmrpRouteTable.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.4.6.1.3
dvmrpPruneExpiryTimeThe amount of time remaining before this prune should expire at the upstream neighbor. This value should be the minimum of the default prune lifetime and the remaining prune lifetimes of the local router's downstream neighbors, if any.ro
TimeTicks (SNMPv2-SMI)
.1.3.6.1.4.1.259.6.10.57.1.18.4.6.1.4
routeMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.18.5
ipCidrRouteExtTableThis entity's IP Extension Routing table.
SEQUENCE OF IpCidrRouteExtEntry
.1.3.6.1.4.1.259.6.10.57.1.18.5.2
ipCidrRouteExtEntryA particular route to a particular destina- tion, under a particular policy.
IpCidrRouteExtEntry
.1.3.6.1.4.1.259.6.10.57.1.18.5.2.1
ipCidrRouteExtDestThe destination IP address of this route. This object may not take a Multicast (Class D) address value. Any assignment (implicit or otherwise) of an instance of this object to a value x must be rejected if the bitwise logical-AND of x with the value of the corresponding instance of the ipCidrRouteMask object is not equal to x.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.5.2.1.1
ipCidrRouteExtMaskIndicate the mask to be logical-ANDed with the destination address before being compared to the value in the ipCidrRouteDest field. For those systems that do not support arbitrary subnet masks, an agent constructs the value of the ipCidrRouteMask by reference to the IP Ad- dress Class. Any assignment (implicit or otherwise) of an instance of this object to a value x must be rejected if the bitwise logical-AND of x with the value of the corresponding instance of the ipCidrRouteDest object is not equal to ipCidrRoute- Dest.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.5.2.1.2
ipCidrRouteExtTosThe policy specifier is the IP TOS Field. The encoding of IP TOS is as specified by the following convention. Zero indicates the default path if no more specific policy applies. +-+-+-+-+-+-+-+-+ | | | | | PRECEDENCE | TYPE OF SERVICE | 0 | | | | | +-+-+-+-+-+-+-+-+ IP TOS IP TOS Field Policy Field Policy Contents Code Contents Code 0 0 0 0 ==> 0 0 0 0 1 ==> 2 0 0 1 0 ==> 4 0 0 1 1 ==> 6 0 1 0 0 ==> 8 0 1 0 1 ==> 10 0 1 1 0 ==> 12 0 1 1 1 ==> 14 1 0 0 0 ==> 16 1 0 0 1 ==> 18 1 0 1 0 ==> 20 1 0 1 1 ==> 22 1 1 0 0 ==> 24 1 1 0 1 ==> 26 1 1 1 0 ==> 28 1 1 1 1 ==> 30
Integer32
.1.3.6.1.4.1.259.6.10.57.1.18.5.2.1.3
ipCidrRouteExtNextHopOn remote routes, the address of the next sys- tem en route; Otherwise, 0.0.0.0.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.18.5.2.1.4
ipCidrRouteExtOspfSubTypeThe OSPF SubType, when the ipCidrRouteProto in IP-FORWARD MIB is ospf(13), this object has value (2)-(7), otherwises, this object will always show none(1).ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.18.5.2.1.5
sysLogMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.19
sysLogStatusWhether system log is enabled.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.19.1
sysLogHistoryFlashLevelSeverity level for logging to flash.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.19.2
sysLogHistoryRamLevelSeverity level for logging to RAM.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.19.3
remoteLogMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.19.6
remoteLogStatusWhether the remote log system is enabled.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.19.6.1
remoteLogLevelSeverity level for remote log.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.19.6.2
remoteLogFacilityTypeThe FacilityType for remote log.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.19.6.3
remoteLogServerTableA Table for storing the remote log Server list.
SEQUENCE OF RemoteLogServerEntry
.1.3.6.1.4.1.259.6.10.57.1.19.6.4
remoteLogServerEntryA conceptually row for remoteLogServerTable.
RemoteLogServerEntry
.1.3.6.1.4.1.259.6.10.57.1.19.6.4.1
remoteLogServerIpThe IP address of the remote log Server.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.19.6.4.1.1
remoteLogServerStatusSetting this to valid(1) creates an entry. Setting this to invalid(2) destroys an entry.rw
ValidStatus
.1.3.6.1.4.1.259.6.10.57.1.19.6.4.1.2
smtpMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.19.7
smtpStatusSet enabled(1) to enable the SMTP, set disabled(2) to disable the SMTP.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.19.7.1
smtpSeverityLevelspecify the SMTP minimum severity level to send the event message.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.19.7.2
smtpSourceEMailSMTP source email address, the sender's mail address that appears in the 'From' field of the mail.rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.19.7.3
smtpServerIpTableThe table of SMTP server Ip. The maximum servers to be added is 3.
SEQUENCE OF SmtpServerIpEntry
.1.3.6.1.4.1.259.6.10.57.1.19.7.4
smtpServerIpEntryA conceptual row of the smtpServerIpTable.
SmtpServerIpEntry
.1.3.6.1.4.1.259.6.10.57.1.19.7.4.1
smtpServerIpSMTP mail servers IP address.ro
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.19.7.4.1.1
smtpServerIpStatusSetting this to valid(1) creates an entry. Setting this to invalid(2) destroys an entry.rw
ValidStatus
.1.3.6.1.4.1.259.6.10.57.1.19.7.4.1.2
smtpDestEMailTableThe table of the destination e-mail address. The maximum numbers of destination email address to be added is 5.
SEQUENCE OF SmtpDestEMailEntry
.1.3.6.1.4.1.259.6.10.57.1.19.7.5
smtpDestEMailEntryA conceptual row of the smtpDestEMailTable.
SmtpDestEMailEntry
.1.3.6.1.4.1.259.6.10.57.1.19.7.5.1
smtpDestEMailSMTP destination e-mail address.
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.19.7.5.1.1
smtpDestEMailStatusSetting this to valid(1) creates an entry. Setting this to invalid(2) destroys an entry.rw
ValidStatus
.1.3.6.1.4.1.259.6.10.57.1.19.7.5.1.2
lineMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.20
consoleMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.20.1
consoleDataBitsNumber of data bits.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.20.1.1
consoleParityDefine the generation of a parity bit.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.20.1.2
consoleStopBitsThe stop Bits of the console, valid value is stopbits1(1) or stopbits2(2)rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.20.1.4
consoleExecTimeoutIn serial console, use the consoleExecTimeout variables to set the interval that the EXEC command interpreter waits until user input is detected, set the value to 0 to disable it.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.20.1.5
consolePasswordThresholdIn serial console, use the consolePasswordThreshold variabes to set the password intrusion threshold, which limits the number of failed logon attempts allowed. Set it value to 0 to disable it.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.20.1.6
consoleSilentTimeIn Console, Use the consoleSilentTime variable to set the amount of time the management console is inaccessible after the number of unsuccessful logon attempts exceeds the threshold set by the password-thresh command. Set it to 0 to disable it.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.20.1.7
consoleAdminBaudRateBaud rate. Valid values are 2400, 4800, 9600, 19200, 38400, 57600, 115200. Setting this variable to 0 means autobaud. Please read the actual baud rate in the consoleOperBaudRate variable.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.20.1.8
consoleOperBaudRateThe baud rate currently in use.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.20.1.9
telnetMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.20.2
telnetExecTimeoutIn a telnet session, to set the interval that the EXEC command interpreter waits until user input is detected, use the telnetExecTimeout variables.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.20.2.1
telnetPasswordThresholdIn a telnet session, use the consolePasswordThreshold variabes to set the password intrusion threshold, which limits the number of failed logon attempts allowed. Set it value to 0 to disable it.rw
INTEGER
.1.3.6.1.4.1.259.6.10.57.1.20.2.2
telnetStatusTo enable or disable the telnet function. Any new telnet request will be rejected and all current telnet sessions will be terminated if this status is set to disabled(2).rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.20.2.4
telnetPortNumberThe telnet session port number.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.20.2.5
sysTimeMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.23
sntpMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.23.1
sntpStatusSet enabled(1) to enable the SNTP, set disabled(2) to disable the SNTP.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.23.1.1
sntpServiceModeService mode.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.23.1.2
sntpPollIntervalPolling interval.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.23.1.3
sntpServerTableTable for SNTP servers
SEQUENCE OF SntpServerEntry
.1.3.6.1.4.1.259.6.10.57.1.23.1.4
sntpServerEntryEntry for SNTP servers.
SntpServerEntry
.1.3.6.1.4.1.259.6.10.57.1.23.1.4.1
sntpServerIndexThe index of a server. This table has fixed size.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.23.1.4.1.1
sntpServerIpAddressThe IP address of a server. Valid IP addresses must occupy contiguous indexes. All IP addresses after the last valid index is 0.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.23.1.4.1.2
sysCurrentTimeIt is a text string in the following form, based on Unix: 'Mmm _d hh:mm:ss yyyy'. 'Mmm' is the first three letters of the English name of the month. '_d' is the day of month. A single-digit day is preceded by the space. 'hh:mm:ss' is a 24-hour representations of hours, minutes, and seconds. A single-digit hour is preceded by a zero. 'yyyy' is the four-digit year. An example is: 'Jan 1 02:03:04 2002'.rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.23.2
sysTimeZoneIt is a text string in the following form: '[s]hh:mm'. '[s]' is a plus-or-minus sign. For UTC, this is omitted. For a positive offset, this is '+'. For a negative offset, this is '-'. 'hh:mm' in the hour and minute offset from UTC. A single-digit hour is preceded by a zero.rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.23.3
sysTimeZoneNameThe name of the time zone.rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.23.4
fileMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.24
fileCopyMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.24.1
fileCopySrcOperTypeThe Copy Operation in which we want to perform to the fileCopyDestOperType, this operation is similar to the CLI command 'copy fileCopySrcOperType fileCopyDestOperType'. file(1) means we want to perform the 'copy file fileCopyDestType' operation, runningCfg(2) means we want to perform the 'copy running-config fileCopyDestOperType' operation, startUpCfg(3) means we want to perform the 'copy startup-config fileCopyDestOperType' operation, tftp(4) means we want to perform the 'copy tftp fileCopyDestOperType' operation, unit(5) is only avaiable in stacking system, in which we can copy files from one unit to another unit and it means we want to perform the 'copy unit fileCopyDestOperType' operation. The possible permuations is as follow: (1)copy file file (2)copy file runningCfg (3) copy file startUpCfg (4)copy file tftp (5) copy file unit(for stacking system only) (6)copy runningCfg file (7)copy runningCfg startUpCfg (8)copy runningCfg tftp (9)copy startupCfg file (10)copy startupCfg runningcfg (11)copy startupCfg tftp (12)copy tftp file (13)copy tftp runningCfg (14)copy tftp startUpCfg (15)copy unit file.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.24.1.1
fileCopySrcFileNameThe source file name for fileCopyMgt when a copy operation is next requested via this MIB. This value is set to the zero length string when no file name has been specified. Note: if the fileCopySrcOperType is runningCfg(2) or startUpCfg(3), this varible can be ignored.rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.24.1.2
fileCopyDestOperTypeThe Copy Operation in which we want to perform from the fileCopySrcOperType, this operation is similar to the CLI command 'copy fileCopySrcOperType fileCopyDestOperType'. file(1) means we want to perform the 'copy fileCopySrcType file ' operation, runningCfg(2) means we want to perform the 'copy fileCopySrcOperType running-config ' operation, startUpCfg(3) means we want to perform the 'copy fileCopySrcOperType startup-config ' operation, tftp(4) means we want to perform the 'copy fileCopySrcOperType tftp' operation, unit(5) is only avaiable in stacking system, in which we can copy files from one unit to another unit and it means we want to perform the 'copy fileCopySrcOperType unit' operation. The possible permuations is as follow: (1)copy file file (2)copy file runningCfg (3) copy file startUpCfg (4)copy file tftp (5) copy file unit(for stacking system only) (6)copy runningCfg file (7)copy runningCfg startUpCfg (8)copy runningCfg tftp (9)copy startupCfg file (10)copy startupCfg runningcfg (11)copy startupCfg tftp (12)copy tftp file (13)copy tftp runningCfg (14)copy tftp startUpCfg (15)copy unit file.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.24.1.3
fileCopyDestFileNameThe destination file name for fileCopyMgt when a copy operation is next requested via this MIB. This value is set to the zero length string when no file name has been specified. Note: if the fileCopyDestOperType is runningCfg(2) or startupCfg(3), this varible can be ignored.rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.24.1.4
fileCopyFileTypeType of file to copy in fileCopyMgt. If the fileCopySrcOperType or fileCopyDestOperType is either runningCfg(2) or startupCfg(3), this varible can be ignored. If the fileCopySrcOperType or fileCopyDestOperType is unit(5), this varibles cannot be set to bootRom(3).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.24.1.5
fileCopyTftpServerThe IP address of the TFTP server for transfer when a download is next requested via this MIB. This value is set to '0.0.0.0' when no IP address has been specified. If neither fileCopySrcOperType nor fileCopyDestOperType is tftp(4), this variable can be ignored.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.24.1.6
fileCopyUnitIdSpecify the unit of the switch for stackable device when performing the 'copy unit file' or 'copy file unit' action, If neither fileCopySrcOperType nor fileCopyDestOperType is unit(5), this variable can be ignored.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.24.1.7
fileCopyActionSetting this object to copy(2) to begin the copy Operation.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.24.1.8
fileCopyStatusThe status of the last copy procedure, if any. This object will have a value of downloadStatusUnknown(2) if no copy operation has been performed.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.24.1.9
fileCopyTftpErrMsgThe tftp error messge, this value is meaningful only when the fileCopyStatus is fileCopyTftpUndefError(1).ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.24.1.10
fileInfoMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.24.2
fileInfoTableThis table contain the information of the file system, we can also perfrom the delete, set startup file operation.
SEQUENCE OF FileInfoEntry
.1.3.6.1.4.1.259.6.10.57.1.24.2.1
fileInfoEntryA conceptually row for fileInfoTable.
FileInfoEntry
.1.3.6.1.4.1.259.6.10.57.1.24.2.1.1
fileInfoUnitIDThe unit of the switch in a stacking system, in a non-stacking system, it value is always 1.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.24.2.1.1.1
fileInfoFileNameThe file Name of the file System in the device.
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.24.2.1.1.2
fileInfoFileTypeThe file type of the file System in the device.ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.24.2.1.1.3
fileInfoIsStartUpThis flag indicate whether this file is a startup file, Setting this object to truth(1) to indicate this is a startup file, setting this object to false(2) is a invalid operation.rw
TruthValue (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.24.2.1.1.4
fileInfoFileSizeThe sizes( in bytes) of the file.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.24.2.1.1.5
fileInfoCreationTimeThe creation time of the file.ro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.24.2.1.1.6
fileInfoDeleteWriting this object to delete(2) to delete a file, when read, this always return noDelete(1).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.24.2.1.1.7
dnsMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.26
dnsDomainLookupTo enable the IP Domain Naming System (DNS)-based host name-to-address translationrw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.26.1
dnsDomainNameTo define a default domain name to complete unqualified host names (names without a dotted-decimal domain name)rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.26.2
dnsHostTableThis table is used to define static host name-to-address mapping.
SEQUENCE OF DnsHostEntry
.1.3.6.1.4.1.259.6.10.57.1.26.3
dnsHostEntryA conceptual row for the dnsHostTable.
DnsHostEntry
.1.3.6.1.4.1.259.6.10.57.1.26.3.1
dnsHostNameThe DNS Host name.
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.26.3.1.1
dnsHostIndexThe secondary index of this dnsHostTable, representing the sequence of the dnsHostIp.
Integer32
.1.3.6.1.4.1.259.6.10.57.1.26.3.1.2
dnsHostIpThe DNS Host IP.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.26.3.1.3
dnsAliasTableThis table display the alias of the host name
SEQUENCE OF DnsAliasEntry
.1.3.6.1.4.1.259.6.10.57.1.26.4
dnsAliasEntryA conceptually row for dnsAliasTable.
DnsAliasEntry
.1.3.6.1.4.1.259.6.10.57.1.26.4.1
dnsAliasNameHost Namero
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.26.4.1.1
dnaAliasAliasAliasro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.26.4.1.2
dnsDomainListTableThis table define a list of default domain names to complete unqualified host names
SEQUENCE OF DnsDomainListEntry
.1.3.6.1.4.1.259.6.10.57.1.26.5
dnsDomainListEntryA conceptually row for dnsDomainListTable.
DnsDomainListEntry
.1.3.6.1.4.1.259.6.10.57.1.26.5.1
dnsDomainListNameDomain Name
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.26.5.1.1
dnsDomainListStatusSetting this to valid(1) creates an entry. Setting this to invalid(2) destroys an entry.rw
ValidStatus
.1.3.6.1.4.1.259.6.10.57.1.26.5.1.2
dnsNameServerTableTo specify the address of one or more name servers to use for name and address resolution
SEQUENCE OF DnsNameServerEntry
.1.3.6.1.4.1.259.6.10.57.1.26.6
dnsNameServerEntryA conceptually row for dnsNameServerTable.
DnsNameServerEntry
.1.3.6.1.4.1.259.6.10.57.1.26.6.1
dnsNameServerIpIp address of name server
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.26.6.1.1
dnsNameServerStatusSetting this to valid(1) creates an entry. Setting this to invalid(2) destroys an entry.rw
ValidStatus
.1.3.6.1.4.1.259.6.10.57.1.26.6.1.2
dnsCacheTableTo display the RRs in DNS cache
SEQUENCE OF DnsCacheEntry
.1.3.6.1.4.1.259.6.10.57.1.26.7
dnsCacheEntryA conceptually row for dnsCacheTable.
DnsCacheEntry
.1.3.6.1.4.1.259.6.10.57.1.26.7.1
dnsCacheIndexThe sequence number of the entry
Integer32
.1.3.6.1.4.1.259.6.10.57.1.26.7.1.1
dnsCacheFlagAlways get 4, means this record is unreliablero
Integer32
.1.3.6.1.4.1.259.6.10.57.1.26.7.1.2
dnsCacheTypeCache Type: address(1); cname(2).ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.26.7.1.3
dnsCacheIpCache Ipro
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.26.7.1.4
dnsCacheTtlCache Ttlro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.26.7.1.5
dnsCacheDomainCache domainro
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.26.7.1.6
hsrpMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.29
cHsrpGlobalConfig
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.29.1
cHsrpConfigTimeoutThe amount of time in minutes a row in cHsrpGrpTable can remain in a state other than active before being timed out.rw
Unsigned32
.1.3.6.1.4.1.259.6.10.57.1.29.1.1
cHsrpGroup
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.29.2
cHsrpGrpTableA table containing information on each HSRP group for each interface.
SEQUENCE OF CHsrpGrpEntry
.1.3.6.1.4.1.259.6.10.57.1.29.2.1
cHsrpGrpEntryInformation about an HSRP group. Management applications use cHsrpGrpRowStatus to control entry modification, creation and deletion. Setting cHsrpGrpRowStatus to 'active' causes the router to communicate using HSRP. The value of cHsrpGrpRowStatus may be set to 'destroy' at any time. Entries may not be created via SNMP without explicitly setting cHsrpGrpRowStatus to either 'createAndGo' or 'createAndWait'. Entries can be created and modified via the management protocol or by the device's local management interface. A management application wishing to create an entry should choose the ifIndex of the interface which is to be added as part of an HSRP group. Also, a cHsrpGrpNumber should be chosen. A group number is unique only amongst the groups on a particular interface. The value of the group number appears in packets which are transmitted and received on a LAN segment to which the router is connected. The application must select the group number as explained in the description for cHsrpGrpNumber. If the row is not active, and a local management interface command modifies that row, the row may transition to active state. A row which is not in active state will timeout after a configurable period (five minutes by default). This timeout period can be changed by setting cHsrpConfigTimeout.
CHsrpGrpEntry
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1
cHsrpGrpNumberThis object along with the ifIndex of a particular interface uniquely identifies an HSRP group. Group numbers 0,1 and 2 are the only valid group numbers for TokenRing interfaces. For other media types, numbers range from 0 to 255. Each interface has its own set of group numbers. There's no relationship between the groups configured on different interfaces. Using a group number on one interface doesn't preclude using the same group number on a different interface. For example, there can be a group 1 on an Ethernet and a group 1 on Token Ring. More details can be found from RFC 2281.
Unsigned32
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.1
cHsrpGrpAuthThis is an unencrypted authentication string which is carried in all HSRP messages. An authentication string mismatch prevents a router interface from learning the designated IP address or HSRP timer values from other HSRP-enabled routers with the same group number. The function of this object is not to supply any sort of security-like authentication but rather to confirm that what's happening is what's intended. In other words, this is meant for sanity checking only.rw
DisplayString
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.2
cHsrpGrpPriorityThe cHsrpGrpPriority helps to select the active and the standby routers. The router with the highest priority is selected as the active router. In the priority range of 0 to 255, 0 is the lowest priority and 255 is the highest priority. If two (or more) routers in a group have the same priority, the one with the highest ip address of the interface is the active router. When the active router fails to send a Hello message within a configurable period of time, the standby router with the highest priority becomes the active router. A router with highest priority will only attempt to overthrow a lower priority active router if it is configured to preempt. But, if there is more than one router which is not active, the highest priority non-active router becomes the standby router.rw
Unsigned32
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.3
cHsrpGrpPreemptThis object, if TRUE, indicates that the current router should attempt to overthrow a lower priority active router and attempt to become the active router. If this object is FALSE, the router will become the active router only if there is no such router (or if an active router fails).rw
TruthValue (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.4
cHsrpGrpPreemptDelayThis delay is the time difference between a router power up and the time it can actually start preempting the currently active router. When a router first comes up, it doesn't have a complete routing table. If it's configured to preempt, then it will become the Active router, but it will not be able to provide adequate routing services. The solution to this is to allow for a configurable delay before the router actually preempts the currently active router.rw
Unsigned32
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.5
cHsrpGrpUseConfiguredTimersHSRP routers learn a group's Hellotime or Holdtime from hello messages. The Hellotime is used to determine the frequency of generating hello messages when this router becomes the active or standby router. The Holdtime is the interval between the receipt of a Hello message and the presumption that the sending router has failed. If this object is TRUE, the cHsrpGrpConfiguredHelloTime and cHsrpGrpConfiguredHoldTime will be used. If it is FALSE, the Hellotime and Holdtime values are learned.ro
TruthValue (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.6
cHsrpGrpConfiguredHelloTimeIf cHsrpGrpUseConfiguredTimers is true, cHsrpGrpConfiguredHelloTime is used when this router is an active router. Otherwise, the Hellotime learned from the current active router is used. All routers on a particular LAN segment must use the same Hellotime.rw
Unsigned32 UNITS "milliseconds"
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.7
cHsrpGrpConfiguredHoldTimeIf cHsrpGrpUseConfiguredTimers is true, cHsrpGrpConfiguredHoldTime is used when this router is an active router. Otherwise, the Holdtime learned from the current active router is used. All routers on a particular LAN segment should use the same Holdtime. Also, the Holdtime should be at least three times the value of the Hellotime and must be greater than the Hellotime.rw
Unsigned32 UNITS "milliseconds"
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.8
cHsrpGrpLearnedHelloTimeIf the Hellotime is not configured on a router, it can be learned from the Hello messages from active router, provided the Hello message is authenticated. If the Hellotime is not learned from a Hello message from the active router and it is not manually configured, a default value of 3 seconds is recommended.ro
Unsigned32 UNITS "milliseconds"
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.9
cHsrpGrpLearnedHoldTimeIf the Holdtime is not configured on a router, it can be learned from the Hello message from the active router. Holdtime should be learned only if the Hello message is authenticated. If the Holdtime is not learned and it is not manually configured, a default value of 10 seconds is recommended.ro
Unsigned32 UNITS "milliseconds"
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.10
cHsrpGrpVirtualIpAddrThis is the primary virtual IP address used by this group. If this address is configured (i.e a non zero ip address), this value is used. Otherwise, the agent will attempt to discover the virtual address through a discovery process (which scans the hello messages).rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.11
cHsrpGrpUseConfigVirtualIpAddrIf this object is TRUE, cHsrpGrpVirtualIpAddr was a configured one. Otherwise, it indicates that cHsrpGrpVirtualIpAddr was a learned one.ro
TruthValue (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.12
cHsrpGrpActiveRouterIp Address of the currently active router for this group.ro
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.13
cHsrpGrpStandbyRouterIp Address of the currently standby router for this group.ro
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.14
cHsrpGrpStandbyStateThe current HSRP state of this group on this interface.ro
HsrpState
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.15
cHsrpGrpVirtualMacAddrMac Addresses used are as specified in RFC 2281. For ethernet and fddi interfaces, a MAC address will be in the range 00:00:0c:07:ac:00 through 00:00:0c:07:ac:ff. The last octet is the hexadecimal equivalent of cHsrpGrpNumber (0-255). Some Ethernet and FDDI interfaces allow a unicast MAC address for each HSRP group. Certain Ethernet chipsets(LANCE Ethernet, VGANYLAN and QUICC Ethernet) only support a single Unicast Mac Address. In this case, only one HSRP group is allowed. For TokenRing interfaces, the following three MAC addresses are permitted (functional addresses): C0:00:00:01:00:00 C0:00:00:02:00:00 C0:00:00:04:00:00.ro
MacAddress (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.16
cHsrpGrpEntryRowStatusThe control that allows modification, creation, and deletion of entries. For detailed rules see the DESCRIPTION for cHsrpGrpEntry.rw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.29.2.1.1.17
cHsrpExtGroup
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.29.3
cHsrpExtIfTrackedTableA table containing information about tracked interfaces per HSRP group.
SEQUENCE OF CHsrpExtIfTrackedEntry
.1.3.6.1.4.1.259.6.10.57.1.29.3.1
cHsrpExtIfTrackedEntryThe cHsrpExtIfTrackedEntry allows an HSRP group interface to track one or more interfaces. Weight(priority) is given to each and every interface tracked. When a tracked interface is unavailable, the HSRP priority of the router is decreased. i.e cHsrpGrpPriority value assigned to an HSRP group will reduce by the value assigned to cHsrpExtIfTrackedPriority. This reduces the likelihood of a router with a failed key interface becoming the active router. Setting cHsrpExtIfTrackedRowStatus to active starts the tracking of cHsrpExtIfTracked by the HSRP group. The value of cHsrpExtIfTrackedRowStatus may be set to destroy at any time. Entries may not be created via SNMP without explicitly setting cHsrpExtIfTrackedRowStatus to either 'createAndGo' or 'createAndWait'. Entries can be created and modified via the management protocol or by the device's local management interface. If the row is not active, and a local management interface command modifies that row, the row may transition to active state. A row entry in the cHsrpExtIfTrackedTable can not be created unless the corresponding row in the cHsrpGrpTable has been created. If that corresponding row in cHsrpGrpTable is deleted, the interfaces it tracks also get deleted. A row which is not in active state will timeout after a configurable period (five minutes by default). This timeout period can be changed by setting cHsrpConfigTimeout.
CHsrpExtIfTrackedEntry
.1.3.6.1.4.1.259.6.10.57.1.29.3.1.1
cHsrpExtIfTrackedIndex into the cHsrpExtIfTrackedTable for the corresponding { ifIndex, cHsrpGrpNumber } pair i.e for an HSRP group. This is the ifIndex of the tracked interface.
InterfaceIndex (IF-MIB)
.1.3.6.1.4.1.259.6.10.57.1.29.3.1.1.1
cHsrpExtIfTrackedPriorityPriority of the tracked interface for the corresponding { ifIndex, cHsrpGrpNumber } pair. In the range of 0 to 255, 0 is the lowest priority and 255 is the highest. When a tracked interface is unavailable, the cHsrpGrpPriority of the router is decreased by the value of this object instance (If the cHsrpGrpPriority is less than the cHsrpExtIfTrackedPriority, then the HSRP priority becomes 0). This allows a standby router to be configured with a priority such that if the currently active router's priority is lowered because the tracked interface goes down, the standby router can takeover.rw
Unsigned32
.1.3.6.1.4.1.259.6.10.57.1.29.3.1.1.2
cHsrpExtIfTrackedRowStatusThe control that allows modification, creation, and deletion of entries. For detailed rules see the DESCRIPTION for cHsrpExtIfTrackedEntry.rw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.29.3.1.1.3
cHsrpExtSecAddrTableA table containing information about secondary HSRP IP Addresses per interface and group.
SEQUENCE OF CHsrpExtSecAddrEntry
.1.3.6.1.4.1.259.6.10.57.1.29.3.2
cHsrpExtSecAddrEntryThe CHsrpExtSecAddrEntry allows creation of secondary IP Addresses for each cHsrpGrpEntry row. Secondary addresses can be added by setting cHsrpExtSecAddrRowStatus to be active. The value of cHsrpExtSecAddrRowStatus may be set to destroy at any time. Entries may not be created via SNMP without explicitly setting cHsrpExtSecAddrRowStatus to either 'createAndGo' or 'createAndWait'. Entries can be created and modified via the management protocol or by the device's local management interface. If the row is not active, and a local management interface command modifies that row, the row may transition to active state. A row which is not in active state will timeout after a configurable period (five minutes by default). This timeout period can be changed by setting cHsrpConfigTimeout. Before creation of a cHsrpExtSecAddrEntry row, either cHsrpGrpConfiguredVirtualIpAddr or cHsrpGrpLearnedVirtualIpAddr must have a valid IP Address. This is because a secondary ip address cannot be created unless the primary ip address has already been set. To create a new cHsrpExtSecAddrEntry row, a management station should choose the ifIndex of the interface which is to be added as part of an HSRP group. Also, an HSRP group number and a cHsrpExtSecAddrAddress should be chosen. Deleting a {ifIndex, cHsrpGrpNumber} row in the cHsrpGrpTable will delete all corresponding rows in the cHsrpExtSecAddrTable. Deleting a primary address value in the cHsrpGrpEntry row will delete all secondary addresses for the same {ifIndex, cHsrpGrpNumber} pair.
CHsrpExtSecAddrEntry
.1.3.6.1.4.1.259.6.10.57.1.29.3.2.1
cHsrpExtSecAddrAddressA secondary IpAddress for the {ifIndex, cHsrpGrpNumber} pair. As explained in the DESCRIPTION for cHsrpExtSecAddrEntry, a primary address must exist before a secondary address for the same {ifIndex, cHsrpGrpNumber} pair can be created.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.29.3.2.1.1
cHsrpExtSecAddrRowStatusThe control that allows modification, creation, and deletion of entries. For detailed rules see the DESCRIPTION for cHsrpExtSecAddrEntry.rw
RowStatus (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.29.3.2.1.2
mvrMgt
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.44
mvrStatusParameter to enable or disable MVR(Multicast VLAN Registration) on the device. NOTE: IGMP Snooping must be enabled first before enabling MVR and MVR will be disabled when IGMP Snooping is disabled.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.44.1
mvrVlanIdTo set VLAN for MVR.The VLAN identified by a particular value of this index is the same VLAN as identified by the same value of dot1qVlanIndex in the Q-BRIDGE-MIB.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.44.2
mvrMaxGroupsThe maximum number of MVR groups.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.44.3
mvrCurrentGroupsThe current number of MVR groups.ro
Integer32
.1.3.6.1.4.1.259.6.10.57.1.44.4
mvrGroupsCtl
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.1.44.5
mvrGroupsCtlIdThe start of a contiguous range of MVR group addresses.rw
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.44.5.1
mvrGroupsCtlCountThe range count for configuring MVR group addresses.rw
Integer32
.1.3.6.1.4.1.259.6.10.57.1.44.5.2
mvrGroupsCtlActionSets the configure action for a contiguous range of MVR group addresses. The start addresses is the current value of mvrGroupsCtlId and the range count is the current value of mvrGroupsCtlCount. Set this object to create(2) to create MVR group addresses. Set this object to destory(3) to delete MVR group addresses. When the action is complete, this object becomes noAction(1).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.44.5.3
mvrGroupTableThe table for configuring the MVR group.
SEQUENCE OF MvrGroupEntry
.1.3.6.1.4.1.259.6.10.57.1.44.6
mvrGroupEntryThe entry for configuring the MVR group.
MvrGroupEntry
.1.3.6.1.4.1.259.6.10.57.1.44.6.1
mvrGroupIdThe multicast address of the MVR group.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.44.6.1.1
mvrGroutActiveTo indicate if the group has a member or not. If there are no members, the status is inactive(2); otherwise the status is active(1).ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.44.6.1.2
mvrGroupStatusSetting this to valid(1) creates an entry. Setting this to invalid(2) destroys an entry.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.44.6.1.3
mvrGroupStaticTableThe table for configuring the static members of the MVR group.
SEQUENCE OF MvrGroupStaticEntry
.1.3.6.1.4.1.259.6.10.57.1.44.7
mvrGroupStaticEntryThe entry for configuring the static members of the MVR group.
MvrGroupStaticEntry
.1.3.6.1.4.1.259.6.10.57.1.44.7.1
mvrGroupStaticAddressThe multicast address of the MVR group.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.44.7.1.1
mvrGroupStaticPortsThe set of ports configured by management in this entry. Ports entered in this list will be the static members of this MVR group.rw
PortList (Q-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.44.7.1.2
mvrGroupStaticStatusSetting this to valid(1) creates an entry. Setting this to invalid(2) destroys an entry.rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.44.7.1.3
mvrGroupCurrentTableThe table for the current members of the MVR group.
SEQUENCE OF MvrGroupCurrentEntry
.1.3.6.1.4.1.259.6.10.57.1.44.8
mvrGroupCurrentEntryThe entry for the current members of the MVR group.
MvrGroupCurrentEntry
.1.3.6.1.4.1.259.6.10.57.1.44.8.1
mvrGroupCurrentAddressThe multicast address of the MVR group.
IpAddress
.1.3.6.1.4.1.259.6.10.57.1.44.8.1.1
mvrGroupCurrentPortsThe complete set of ports currently associated with this MVR group.ro
PortList (Q-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.44.8.1.2
mvrPortTableThe table for configuring the MVR port.
SEQUENCE OF MvrPortEntry
.1.3.6.1.4.1.259.6.10.57.1.44.9
mvrPortEntryThe entry for configuring the MVR port.
MvrPortEntry
.1.3.6.1.4.1.259.6.10.57.1.44.9.1
mvrIfIndexThe port interface of the portTable. The interface identified by a particular value of this index is the same interface as identified by the same value of ifIndex in the IF-MIB.
InterfaceIndex (IF-MIB)
.1.3.6.1.4.1.259.6.10.57.1.44.9.1.1
mvrPortTypeFor configuring the MVR port type. To disable the MVR port type, use the none(0).rw
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.44.9.1.2
mvrPortImmediateLeaveTo enable immediate leave on MVR port.rw
EnabledStatus (P-BRIDGE-MIB)
.1.3.6.1.4.1.259.6.10.57.1.44.9.1.3
mvrPortActiveTo indicate if the port is associated with the MVR group. If the port is the MVR receiver port or the MVR source port in MVR vlan, the status is active(1); otherwise the status is inactive(2).ro
Enumeration
.1.3.6.1.4.1.259.6.10.57.1.44.9.1.4
mvrRunningStatusDescribes the running status of MVR (Multicast VLAN Registration) to the switch. A value of true(1) indicates that all necessary conditions in the MVR environment are satisfied. A value of false(2) indicates that some necessary conditions in the MVR environment are not satisfied.ro
TruthValue (SNMPv2-TC)
.1.3.6.1.4.1.259.6.10.57.1.44.10
es4612MIBNotifications
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.2
es4612Traps
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.2.1
es4612TrapsPrefix
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.2.1.0
swPowerStatusChangeTrapThis trap is sent when the power status of an individual power changes.
NOTIFICATION-TYPE
.1.3.6.1.4.1.259.6.10.57.2.1.0.1
swFanFailureTrapThis trap is sent when the fan is failure.
NOTIFICATION-TYPE
.1.3.6.1.4.1.259.6.10.57.2.1.0.17
swFanRecoverTrapThis trap is sent when fan failure has recovered.
NOTIFICATION-TYPE
.1.3.6.1.4.1.259.6.10.57.2.1.0.18
swPortSecurityTrapThis trap is sent when the port is being intruded. This trap will only be sent when the portSecActionTrap is enabled.
NOTIFICATION-TYPE
.1.3.6.1.4.1.259.6.10.57.2.1.0.36
swSmtpConnFailureTrapThis trap will be triggered if the SMTP system cannot open a connection to the mail server successfully.
NOTIFICATION-TYPE
.1.3.6.1.4.1.259.6.10.57.2.1.0.41
es4612MIBConformance
OBJECT IDENTIFIER
.1.3.6.1.4.1.259.6.10.57.3
ES4612-MIB - SNMP MIB Reference | MIBs Explorer